1. Introduction
1.1. Gas Nano-Sensor
It is easy to encounter some flammable and toxic gases in daily life, some of which can cause air pollution and affect human health [
1]. To detect the specific gas, chemical gas sensors have drawn the attention of scientists for a long period. Up to now, the gas sensing devices based on metal oxide semiconductors (MOS) have been wildly used owing to several advantages, such as their low cost, lower service restrictions, and long stability [
2]. Properties of a gas sensor are evaluated by parameters such as response, operating temperature, repeatability, response/recovery time, detection limit, and selectivity. These important indexes are usually related to the sensitive material of the sensor, so approaches to more sensitive materials have been studied for a long time.
Nanomaterials refer to materials with at least one dimension of nanometer size (1–100 nm) in the three-dimensional space. According to the dimension of the nanoscale, nanomaterials can be divided into zero-dimensional structure, one-dimensional structure, and two-dimensional structure. It should be noted that a three-dimensional structure refers to a structure formed by low-dimensional materials, which still belongs to nanomaterials. In continuous in-depth research, nanomaterials are considered to be more suitable for gas sensing than traditional materials. Because nanomaterials will produce unique characteristics because of nanometer effects such as small size effects, surface and interface effects, and macroscopic quantum tunneling effects [
3]. Therefore, the materials involved in this article are all in the nanometer size range.
1.2. Spinel-Type Materials
Spinel structure can be divided into many types according to the non-metal elements, including oxides, sulfides, fluorides, etc. [
4] and the most common oxides are illustrated as examples herein. The common formula for normal and inverse spinel structures are A
tetra(B
2)
octaO
4 and B
tetra(AB)
octaO
4 respectively [
5]. In the structure of a normal spinel material, A is a divalent metal ion, which generally refers to the elements like Zn, Cd, Cu, Ni, Mg, and Co placed at the tetrahedral site. Meanwhile, the component B (usually means the element Fe, Cr, Ga, Co, and Al [
6]) is the trivalent ion placed at the octahedral site. In
Figure 1a, oxygen ions arrange in cubic close packing, while the divalent cations fill in one-eighth tetrahedral void and trivalent cations fill in a half octahedral void.
Many investigators have been exploring the potential of spinel materials in gas and catalysis fields because of its specific 3D porous structure for some time. As a semiconductor, spinel materials have been studied as an electronic material for over fifty years [
6]. Up to now, spinel structures have been widely used in gas storage or separation [
7,
8] and battery catalysis [
9,
10], but remain less popular in the gas sensing field. Most recently, the reviews mainly follow closely to the gas chemo catalysis and gas absorption [
11], several recent articles have reviewed the research progress on spinel structures chemical using without special attention on gas sensing. The articles which concentrate on the spinel-type material synthetic method and improvement of gas sensing only have not been reviewed in the literature before. At present, some existing studies indicate that spinel materials can also be widely used in gas detection and its special structure has aroused people’s interest in the gas sensing field. Therefore, we attempt to force on the gas sensing aspect in this article. In this review, we make efforts to provide an overview of the spinel materials for structure, geometry, and modification in the gas sensing field.
2. Sensing Mechanism
2.1. N-Type Material
In this section, a typical n-type semiconductor ZnFe2O4 will be analyzed to clarify the agreed-upon working mechanism of a chemical gas sensor. According to habit, the change of the resistance, usually written as Ra/Rg (Ra: the resistance in the air; Rg: the resistance of the sensor after exposing to the aimed gas), is the response which is the main performance of a gas sensor.
When the ZnFe
2O
4 based sensor is exposed to the air, the oxygen molecules in the air will chemisorb onto the metal oxide particle capturing the electrons and transform into O
2−, O
−, or O
2−, which specifically depend on the temperature shown in Equations (1)–(4). The electron transfers that occur in Equations (2)–(4) cause the formation of the depletion layer on the material’s surface, making the conductive channel narrow with the increase of R
a [
12].
Considering the particularity of spinel-type structural materials, it also has a different principle from ordinary single metal oxides. During the sensing process, the chemisorbed oxide particle can capture electrons, changing Fe
2+ to Fe
3+, which is shown in Equation (5). On account of the dissociation effect of oxygen, the valency distribution and defects in the crystal structure are changed, while a part of the conductive three-dimensional network structure is cut off so that the Ra of the material increases significantly [
12].
When the reduced gas diffuses to the surface of the sensitive material, it will rapidly undergo a redox reaction with the oxygen on the surface. During the reaction, electrons captured by oxygen will return to the material, and the resistance will be obviously reduced. According to the sensing mechanism, the possible reacting processes to reduced gas are as follows Equations (6) and (7) [
13], while the detailed reaction will change with the operating temperature. For example, when a spinel material detects ethanol at 147–397 °C, there will be a reaction, as shown in Equation (8). The electrons will be released back to the surface first and combine with the surface vacancy that rapidly decreases the resistance of the sensor as well as reduce Fe
3+ to Fe
2+.
2.2. P-Type Material
The mechanism of p-type material, NiFe
2O
4, is easily understood by analogy. It should be noted that the response this time is defined as
Rg/
Ra. In the reduced reaction, the hole becomes the carrier, which means the change of resistance presents the opposite trend of the n-type material. Due to the suspicion, the transformation in the process might react as follows [
14,
15] in Equation (9):
2.3. Mixed-Type Material
So far, there is no systematic research on the mixed type material because of its complexity. The mixed-type material generally includes more than two kinds of cations such as Ni-Zn ferrites (Chemical formula: Ni
1-xZn
xFe
2O
4) and Co-Ni ferries (Co
1-xNi
xFe
2O
4). In the synthesis of nickel-zinc ferrite, zinc ions prefer to occupy tetrahedral positions than iron ions, along with the replacement of the Fe
3+ ions from tetrahedral to octahedral positions, forming a kind of mixed-typed spinel material with divalent and trivalent ions distributed uniformly in the tetrahedron and octahedral position. Properties of the mixed-type material often depend on the operating temperature. For example, the Ni
0.5Zn
0.5Fe
2O
4 and Ni
0.3Zn
0.7Fe
2O
4 will show the gas sensing characteristics of the n-type material when the temperature is lower than 225 °C, while it will show characteristics of the p-type structure material when it is higher than 225 °C [
6]. The performance of the mixed type spinel structure is greatly affected by cations composition, synthesis process and test conditions, so there is no unified sensing mechanism has been found. However, the formation of the mixed-type structure has an uncertain effect on the gas sensing properties of the material. In the enhancing chapter, the effect of metal doping will be introduced later.
3. Morphology
In the process of improving gas sensor performance, the morphology of sensitive materials is a primary improvement direction. Reasonable specific surface area, porosity, growth direction and grain size are related to the sensitivity and other properties of the gas nano-sensor. Therefore, the controllable morphology of spinel materials is not only its advantages but also the direction that researchers have been working hard on. Using different preparation methods, the researchers obtained several spinel materials with different morphologies. The following sections will review the morphology of the spinel-type materials common in the literature and their advantages of gas sensing brought about by the diverse morphology.
3.1. Nanoparticles
The morphology of nanoparticles determines that electrons need to pass through more interfaces during the electron transport process, which will reduce the efficiency noticeably. Further in the synthesis process, zero dimensional nanoparticles more easily form agglomerates, which increases the difficulty of synthesis. Although the particle morphology has a larger specific surface area, it is still not suitable to the improvement of gas sensitivity. In short, the spinel structure of nanoparticles is not the most ideal morphology for gas sensing detection, and relatively fewer documents also illustrate this point.
Patil et al. [
16] used the glutamic acid combustion method to synthesize the ZnFe
2O
4 powder structure. During the process, by mixing Zn (NO
3)
2·6H
2O, Fe (NO
3)
3·9H
2O and glycine, sparks were generated when heated to the critical temperature and the burned product formed into brown fluffy ZnFe
2O
4 powder. Combined with the results of the expected morphology shown in
Figure 2, the advantages of the combustion synthesis method, like the convenience, environmental protection, economy, and high efficiency [
17], mean it should be followed up to a certain extent in the synthesis of materials.
Zhang et al. [
18] synthesized ZnFe
2O
4 nanoparticles with the hydrothermal method which makes the material present a good dispersion and a better sensing property to acetone. The experimental reaction conditions have a crucial influence on the morphology, and this factor will be discussed in the subsequent enhancing section. By continuously changing the molar ratio of zinc oxide and ferric chloride and the reaction time, the experiment had obtained several morphologies represented in
Figure 3. Here, the optimal morphology was synthesized by following conditions: molar ratio 1:2, reaction time over 12 h and the reaction temperature at 180 °C. Further from the gas response curves in the article, the ZnFe
2O
4 based gas sensor had a higher response (39.5) than the zinc oxide sensor (4.2) in the same testing condition with lower operating temperature at 200 °C. Therefore, we can reasonably speculate that zinc ferrite material is an ideal alternative material for detecting acetone.
For more in-depth study of the material advantages, An et al. [
19] synthesized zinc oxide, tin oxide and zinc stannate (a typical inverse spinel structure) via co-precipitation methods. Through analyzing the N
2 adsorption-desorption isotherms and the pore size distribution curve, it can be confirmed that the synthesized material this time had a typical porous structure. In order to further determine the performance of the material, gas sensitivity tests were carried out onto the three materials. The results in
Figure 4 showed an obvious gap that zinc stannate reached a response of 39.5 to ethanol gas at a lower working temperature (180 °C), which was comparable to zinc oxide (18.6, 200 °C) and tin oxide (15.3, 240 °C) in terms of performance.
3.2. Nanorods
Connected structure like nanowire or nanorod means fewer contact interfaces during electron transmission. This kind of one-dimensional (1D) avoids the recombination of electrons with other ions and enables electrons to be transferred at a higher speed. At the same time, one-dimensional materials are more beneficial to complete the contact with reactants, making nanowire/nanorod more suitable for gas sensors.
Ponmudi et al. [
20] used sputtering technique to synthesize the nano-grass morphology of copper aluminate (CuAl
2O
4, which has been less studied) for the gas sensing. Experimental data showed that the material could produce 99.77 response to 100 ppm ammonia gas, and there was still a certain response to concentration below 10ppm. The good selectivity and high response indicate that the material has certain research prospects and is worthy of further research. Mintcheva et al. [
21] also made certain contributions to the detection of ammonia. The researchers used the laser ablation in liquid (LAL) method to synthesize hybrid oxide nanoparticles of zinc and tin and conducted simple tests. The results showed that the synthesized material could produce a 92% response to 250 ppm ammonia at room temperature. Although the researchers did not conduct further research in gas sensing field, the novel synthesis method, room temperature working temperature, and better selectivity all indicated that the synthesized materials should be further studied and explored.
The guide agent, a key element of the soft template method, is very widespread in the synthesis process of spinel morphology. Wang et al. [
22] used FeSO
4·7H
2O and Zn(NO
3)
2·H
2O as reaction raw materials, with cetyltrimethylammonium bromide (CTAB) as the directing agent. After usual steps, the final morphology of the ZnFe
2O
4/ZnO, which is shown in
Figure 5a presented with a diameter of 9.4–34.7 nm and a length of 140–410 nm porous rod-like structures. The plausible mechanism of the rod-like structures is explained as the assistant of cation CTAB surfactants that be further explained as follows: under water bath conditions CTAB can help Zn(OH)
42− combine with each other and decompose into ZnO nuclei which can self-assemble and grow into a rod-shaped structure in a specific axis orientation. Due to the unique structure formed by the surfactant and the role of the heterojunction, the ZnFe
2O
4/ZnO nano heterostructure had excellent gas sensitivities. Specifically, compared with the zinc oxide nanowire synthesized by Zou et al. [
23], the heterojunction nanowire structure synthesized in this experiment can reach a gas response of 26.5 at a lower working temperature and a reaction time of 12 s, while the corresponding zinc oxide can only achieve a response of 9.1 to n-butanol at 320 °C. Wang et al. [
24] had also done experiment using organic structure-directing agents to form rod-like structures. During the experiment, the researchers used SDSN as a directing agent, so that the material eventually formed a SnO
2/ZnO nanowire structure shown in
Figure 5b.
3.3. Nanosheets
The regular nanosheet structure can provide several active sites, expose effective crystal faces, and provide more electron transfer channels. All the tunes of the properties will effectively improve the gas performance of the material, attracting more people to study nanosheet morphology [
25].
Hard template method, another broad application method, needs to use the material with fixed structure as a template to participate in the synthesis of the morphology and finally removed by some specific method. Wang et al. [
26] chose KIT-6 as the template to synthesize porous ZnFe
2O
4 nanosheet structures and removed the hard template by 2 mol/L NaOH solution, leaving the ideal porous structure of ZnFe
2O
4. In experiments, it was found that the synthesized porous structure had good selectivity to acetone. Therefore, the authors speculated that the special mesoporous structure was an important factor in the selectivity to acetone.
Wu et al. [
27] synthesized ZnGa
2O
4 nanosheets which were able to detect NO, by using metal organic vapor deposition (MOCVD). Through SEM observation, it could be found that a layer of nanosheets was formed by the arrangement of spindle-shaped particles. The following gas sensitivity test showed that the material produced a response of 22.21 to 6.25 ppm nitric oxide gas at 300 °C, while compared with other gases like SO
2 (125 ppm, 1.27) and CO (125 ppm, 1.06), the selectivity to NO is excellent. In order to further study the gas sensing mechanism, the researchers used first-principles reactions of gases with different surface structures, and proposed possible reaction processes by establishing five models, including N-Ga, N-Zn, and N-Zn-Ga, in specific model simulations, as shown in
Figure 6.
However, the nanosheet tends to act as a transitional form and assemble or modify into another morphology. In order to prove this point of view, there are many paper data can be listed. Xu et al. [
28] synthesized spherical-like nanostructures assembled from Zn
2SnO
4 nanosheets using Zn(CH
3COO)
2·2H
2O and SnCl
4·5H
2O at a pH of 11 with ethylenediamine as the solvent. The experiment used synthetic materials to achieve a detection limit of 1 ppb for H
2S at a working temperature of 133 °C with good selectivity.
Jiang et al. [
29] used raw materials and methods that are similar to the above-mentioned and synthesized a cubic nanostructure assembled from nanoplates without the calcination process. In the article, comparing the ordinary Zn
2SnO
4 with the assembled cubic structure, it can be found that the cubic structure significantly improved correspondingly through the response curve in
Figure 7c. Although the specific surface area of the assembled cubic structure (26.99 m
2/g) is smaller than that of the irregular Zn
2SnO
4 nanosheet structure (40.49 m
2/g), the corresponding effect of the cubic structure is better. The result contrary to logic can be explained as the aggregation of gas molecules will not only affect the occurrence of high response, but also affect the response speed of the gas [
30]. As a layered structure, the cube-like morphology has a clear porous structure, and the surface can have better accessibility than the sheet structure. At the same time, it can avoid particle consolidation and provide an effective path for the diffusion of the target gas. In addition, the obvious appearance of a (1 1 1) crystal plane may also provide active sites for gas adsorption, increasing the gas response of the overall material. More articles studied the combination of nanostructures forming into a bulk structure are listed in
Table 1.
3.4. Nanospheres
The hollow sphere and the quasi-spherical structure increase the specific surface area and provide a smaller charge transfer distance [
34] with a higher permeability [
35] because of the unique morphology. Therefore, the hollow nanospheres are more suitable for the detection of various gases than the solid structure.
Yang [
36] synthesized the porous nanosphere structure of CuFe
2O
4 by solvothermal method. Comparing the pure CuO and α-Fe
2O
3 nanoparticle sensors, the response of the synthesized porous structure to toluene at 250 °C can reach at 20.1, which was nearly 5.4 times that of CuO and α-Fe
2O
3. This proves the feasibility of porous materials in gas detection. Zhou et al. [
37] used ethanol and ethylene glycol (EG) as solvents to synthesize a ZnFe
2O
4 porous nanosphere structure composed of nanoparticles by a simple solvothermal method. After testing, the synthesized material was able to detect acetone at a minimum of 800 ppb, and the response could reach 1.5, refreshing the lower limit of acetone detection in the spinel material sensing field. In the article, Liu [
38] synthesized ZnCo
2O
4 porous hollow spheres by using a series of methods of controlling variables to find the appropriate reaction conditions in the experiment. Through observing the following SEM image in
Figure 8, it could be found that the material is gradually formed from irregular particles into a hollow sphere structure with a consistent shape. In addition, through many experiments, it is possible to discover that the mixed solution of ethanol and EG is often used as a solvothermal reaction environment.
Zhang et al. [
39] synthesized hollow NiFe
2O
4 octahedral structure using self-sacrificial template method with dimethylformamide (DMF) and ethanol as solvents with terephthalic acid (PTA) and diaminobenzidine (DAB) as guiding agents. In order to prove the actual effect of the two guiding agents, the authors experimented by adding PTA and DAB separately. The results showed that only sheet-like and regular structures were synthesized, still it could not further form into an octahedral hollow structure, presenting both directing agents as necessary for the synthesis of morphology.
3.5. Nanoflowers
The 3D flower-like structure provides an inward diffusion path for the gas, so it is capable of improving the sensing performance effectively. Chen et al. [
31] demonstrated the enormous gap between the Zn
2SnO
4 nanoflower structure and the solid structure of the sphere. At an operating temperature of 380 °C, the response of the nanoflower structure to 50 ppm ethanol could reach 30.4, which was three times the corresponding structure.
Sahoo et al. [
40] used the modified hydrothermal (MHT) to achieve the synthesis of two type flower-like structures by choosing different synthesis strategies. The MHT under the action of urea made the reaction process reactant Fe(OH)
3 dehydrogenated into (FeOOH). After adjusting the molar ratio of Zn to Fe, two different forms of nanoflowers were finally generated, and detailed processes are clearly shown in
Figure 9. In addition, Sahoo also mentioned the application of ZnFe
2O
4 nanoflowers in other fields like mimicing peroxidase activity in this paper. This experimental result showed that ZnFe
2O
4 was helpful for the selective detection of H
2O
2 and Hg
2+ ions in the solution by the naked eye as well.
Liu et al. [
41] synthesized ZnFe
2O
4/ ZnO nanoflowers by mild hydrothermal method. The first was to synthesize the ZnO nanoflowers at 80 °C, then rinsed the nanoflowers three times with the configured Fe(NO
3)
3 solution, and finally burned the sample at 500 °C to form ZnFe
2O
4/ZnO nanoflowers. In the gas property test, the sample synthesized this time produced an 8.3 response to 50 ppm acetone at an operating temperature of 250 °C; in comparison, pure zinc oxide had only a 5.2 response to 100 ppm acetone at 300 °C. The results showed that the composite nanoflower structure had a good improvement in working temperature and gas response.
3.6. Core-Shell Structures
Core-shell structure, a morphology proposed later, makes the spinel-type sensitive materials widely applied in the fields including supercapacitor electrodes [
42,
43], ions batteries [
44], catalysts [
45], and sensing [
1]. Since most of the core-shell structure is derived from the nanosphere structure, it can be regarded as an impact on morphology, which will be partly introduced in the enhancing chapter.
Hu et al. [
46] used the solvothermal self-assembly method for the first time to synthesize litchi-shaped ZnO/ZnFe
2O
4 core-shell hollow microspheres. Via the SEM images, it could be found that the ZnO/ZnFe
2O
4 product displayed as the required core-shell structure, and the response to 100 ppm acetone reached 33.6 at 280 °C, which was nearly five times that of the ZnO (6.0) and twice that of the pure ZnFe
2O
4 (17.3).
Zhou [
47] synthesized the core-shell ZnFe
2O
4 by increasing the reaction time from 1 h to 21 h in the experiment and observed the morphological changes which are shown in
Figure 10. From the figure, as the increase of reaction time went, due to the occurrence of an Ostwald ripening process [
48,
49,
50], the product gradually changed from a solid ball to a core-shell structure, and reached the ideal porous core-shell structure at 21 h. The author made a guess about the possible working process, which is shown in
Figure 11.
Compared with the structure of zinc ferrite mentioned in other similar papers, the synthesized core-shell structure exhibited good gas sensitivities. This material produced a response of up to 28.3 to 50 ppm of acetone at an operating temperature of 200 °C, while the pure zinc ferrite nanocube [
51] only produced the response of 18.5 to 1000 ppm of target gas and the graphene-zinc ferrite composite structure [
52] produced a response of 9.1 to 1000 ppm acetone, respectively. The obvious difference in performance showed that the material had a strong detection ability for acetone, even far exceeding the composite structure.
4. Enhancing
In the past research process, the direction of improvement on spinel materials (especially ZnFe
2O
4 [
19]) can be mainly divided into two categories: the improvement of the morphology itself and the doping with other materials. Because doping is an important and effective route to promote the properties of semiconductors [
53,
54,
55,
56], more researches are conducted. Compared with single metal oxidation, spinel materials are able to be modified by some common metals. Moreover, this modification can effectively replace the original metal ions and largely change the morphology and performance of the original material [
57]. Several improving methods are stated as follows.
4.1. Reaction Process
Various reaction factors in the reaction process have a key influence on the formation of the material structure, such as the molar ratio of the reactants, the reaction time, pH value, and grinding, all of which will confirm the gas-sensitive potential of the morphology. In the following, this point will be proven through several sets of experiments. In the process of synthesizing ZnFe
2O
4 nanosphere by hydrothermal method, Liu [
58] analyzed the influence of the solvent system, reaction temperature and reaction time on morphology through multiple sets of experiments. Typically, the author set the reaction time to four stages of 0, 4, 8, and 15 h to obtain the effect of time on morphology by analyzing the SEM image in
Figure 12. The results showed that too short a reaction time will not form a regular morphology while too long a reaction time will destroy the morphology and cause the nanoparticles to reunite.
Qu et al. [
59] synthesized ZnFe
2O
4 with double shell structure using 0.25 mmol zinc nitrate and 0.5 mmol ferric nitrate as raw materials, and a mixed solvent of glycerol and isopropanol as reaction environment. In the annealing process, three products with different morphologies were formed by controlling various heating rate upon 1 °C/min, 20 °C/min to directly 350 °C. From
Figure 13, it can be found that as the heating rate is gradually accelerated, the morphology gradually changed from a solid ball to a double-shell structure. Observing the response of the three structures to acetone in
Figure 14, it was seen that the increase in the number of shells had a good improvement in the response property of the gas. The impact on sensing properties are due to the porous surface of the double-shell structure, which can provide more active sites, adsorbing more oxygen without preventing gas diffusion.
Guan et al. [
60] studied the correlation between the dripping speed and morphology of the material. Three control groups were set up throughout the experiment, and the liquid drip rate was set to 1 s/drop, 2 s/drop, and 3 s/drop respectively. By observing the SEM pattern difference of the three groups of materials in
Figure 15, it can be found that the morphology in the 3 s/drop is the most complete and most suitable for gas detection. Guan proposed a probable reason for this phenomenon. When the dripping speed is too fast, the evaporation speed of the water cannot keep up with the dripping speed, which will cause the hollow ball to break. When the dripping speed becomes slower, the water can be dispersed into smaller droplets that support a transformation to a complete and smaller spherical structure.
It is worth noting that grinding also influences morphology. In the experiment, Yang [
61] conducted a grinding operation on the synthetic product. From the comparison of the SEM images before and after, it can be found that the grinding destroyed the original spherical structure, and the material has agglomerated. Therefore, in the experiment, the grinding operation should be carried out selectively to keep the most rational appearance.
4.2. Graphene
Graphene oxide, a common material used to improve gas sensing property, has an obvious enhancing effect. As a p-type semiconductor, the two-dimensional GO material can effectively reduce the working temperature of the gas sensor and use the oxygen-containing functional groups on the surface to adsorb the target gas molecules [
62,
63].
Wang et al. [
64] used Hummers’ method [
65] with the hydrothermal method to obtain the structure of Zn
2SnO
4 particles attached to RGO nanosheets and tested the NO
2 in a humid environment. The common NO
2 sensor is greatly affected by humidity and the specific performance is that the higher the humidity, the lower the response [
66,
67,
68,
69], while the synthesized material could achieve a response of 5.97 to 1 ppm NO
2 at the operating temperature of 30 °C under an environment of 80% rh. Laboratory finding concluded into the higher the humidity, the better the performance of this sensor, and this is mainly because the adsorbed water makes a great effort in the chemical adsorption process of the target gas molecule [
70] which promotes the sensing reaction. Further, the participation of graphene reduces the operating temperature of the spinel sensor, enabling the sensor to perform gas detection at room temperature; the porous structure of graphene provides more sites for the gas to adsorb and increases gas response [
71]. In addition, the formation of a p-n heterojunction can also increase the gas sensing performance, and the principle shown in
Figure 16 will soon be explained in the heterojunction part.
Chu et al. [
72] studied the influence of graphene content on the gas-sensing properties of zinc stannate. By changing the proportion of graphene, it could be found from the response curve of
Figure 17 that each material had the best response at room temperature (20 °C). Compared with the higher operating temperature (200 °C or higher) of other undoped zinc stannate materials [
31,
73,
74,
75], the result showed that graphene has a good improvement effect on working temperature. At the same time, it can be seen intuitively in the curve that the best response (18.9) to formaldehyde gas was when the graphene doping content is 0.5 wt%. Chu proposed a reasonable explanation for this phenomenon in that the addition of graphene created a p-n heterojunction at the interface of the materials, which effectively improved the gas sensing characteristics, but when too much graphene was added to the material, a “shortcut” would be formed between the graphenes, which weakened the affection of the heterojunction.
4.3. Heterojunction
Heterojunction refers to the interface area formed by the contact of two different semiconductors [
1]. Due to the different work functions of the two semiconductors, in order to enable the Fermi level to be at the same level, electrons will undergo corresponding electron transfer between the two which depends on the material’s type. Meanwhile, electron depletion, formed at the junction of the two layers, will help to increase the gas sensing properties. According to the type of two semiconductor materials, heterojunctions are divided into three categories: n-n-type heterojunctions, p-p-type heterojunctions, and p-n-type heterojunctions. Part of the literature results are summarized in
Table 2.
Qu et al. [
82] considered that Co
3O
4 and ZnCo
2O
4 have the same crystal structure, so a reasonable material combination is possible to be made. Qu used molecular sieve imidazole framework-67 (ZIF-67) as the self-sacrificial template and the Co
3O
4/ZnCo
2O
4 composite hollow nanostructure was obtained through transformation and heat treatment. The composite material conjectured composite structure shown in
Figure 18 presented a peculiar rhombic dodecahedron hollow structure, which provided an effective means for gas diffusion. In addition, the p-p type heterojunction formed in the material with the thin shell close to the Debye-length outside both helped to improve the overall gas sensitivity, so that the synthesized material produced a 16.3 response to 100 ppm at a working temperature of 255 °C.
4.4. Metal Doping
Noble metal doping is a conventional method which effectively improve the gas-sensing properties of semiconductors and has been effectively applied to single oxide materials with multiple morphologies [
83]. Due to the particularity of spinel-type materials, it can be doped with common metals also, which will undergo substitution between elements [
84], and modify the physical properties of the morphology to achieve the purpose of improving performance. Next, the metal doping enhancement will be described from two aspects.
4.4.1. Noble Metal
As a common correction method, doping noble metals has been studied for a long time. The noble metals mainly refer to gold, silver, and platinum group metals (including Ru, Pt, Pd, etc.) which have gorgeous lusters and are quite resistant to most of the chemicals under normal circumstances [
1].
Zhang et al. [
83] used Zn(CH
3COO)
2·2H
2O and Fe(NO
3)
3·9H
2O as raw materials to synthesize a hollow spherical structure formed by stacking zinc ferrite nanosheets, and set 4 groups of different Ag contents (1, 0.5, 0.25 and 0.1 wt%) experiments to study the influence trend of different content of precious metals on the gas sensitivity of materials. By observing the test curves in
Figure 19, the performance was best when the doping amount is 0.25 wt%. At this time, the response/recovery time (17 s/148 s) of the material modified with silver was compared with that of the unmodified material (34 s/307 s) had a significant improvement. In studying the influence of different silver content on the gas-sensitivity performance, Zhang found that the response continued to increase with the increase of the content, while there was a significant drop after reaching 0.25 wt%. Zhang made a reasonable explanation for this phenomenon suggesting that excessive additives (silver nitrate) destroyed the flaky structure formed by ZnFe
2O
4, reduced the active sites on the surface, and caused a corresponding decrease. Therefore, when performing the noble metal doping, it is necessary to consider the influence of doping amount on gas sensitivity.
Many articles [
53,
84,
85,
86,
87] have studied the sensitization of precious metals, and it is currently believed that the performance can be affected by the following two aspects.
(1) Chemical sensitization: Precious metals have the characteristics of adsorbing oxygen molecules and target gases in the surrounding area. Under the same circumstances, precious metal-modified semiconductor devices tend to provide more active sites, forming more adsorbed oxygen which affects the initial resistance; at a certain temperature, it is worth noting that some metals have a special ability on attracting the specified gas, increasing the number of aimed gas adsorbed on the metal surface first, diffusing to the outside of the semiconductor later [
88,
89]. The sensitization process can be understood simply through
Figure 20.
(2) Electronic sensitization: Schottky junction will be formed on the contact surface of metal nanoparticles and semiconductor material. Take Au and ZnFe
2O
4 core-shell structure as an example for the specific explanation [
90]. The work functions of ZnFe
2O
4 and Au are 4.4 eV and 5.3 eV, respectively, which means that the Fermi energy level of Au is higher. In order to achieve a unified Fermi energy level, as shown in
Figure 21, part of the electrons will be transferred from the semiconductor to the noble metal, so that the combined material has a higher initial resistance and is more sensitive to gases. In terms of data, the sensitization effect was shown as the original ZFO produced a 20.2 response to 30 ppm chlorobenzene (CB) gas, while the gold-modified ZFO produced a 90.9 response to this concentration of gas.
Since the Schottky junction and the heterojunction are both effective methods for improving the property, some people jointly applied the two to form nanostructures for gas testing. Li et al. [
91] synthesized a hollow mesh structure of Au-doped ZnO/ZnFe
2O
4 and tested it on acetone. The material synthesized this time is five times the response of pure ZnO, showed the potential of the nano-meshes on acetone detection and provided new thinking that can be referenced for high-performance acetone gas sensors.
4.4.2. Metal Element Replacement
Inside the spinel structure, there are numerous voids in the tetrahedron and octahedron formed by close packing of oxygen. When the voids are doped by other elements or the original elements are replaced, it will have a great impact on the gas sensitivity of the material [
92,
93,
94]. At present, people mainly study the doping or modification between non-noble metals and the spinel structure. Further, many studies have shown that the addition of non-metals can effectively change the structure of the material, thereby achieving the purpose of affecting gas sensitivity.
Deraz et al. [
95] used the combustion method with changing the content of added zinc nitrate and finally synthesized the Zn/CoFe
2O
4 porous structure. By observing the analysis of the XRD diagram, it can be found that element replacement had occurred. Based on experience, researchers used the diffraction intensity of the (3 1 1) plane as a measure of crystallinity. With the increase of zinc content, the height of XRD main peak continued to rise, reaching the original 135%, which phenomenon was positively caused by the substitution of Zn for Co. At the same time, the increase in other data indicators such as the crystallite size (d), lattice constant (a) and unit cell volume (V) also illustrated the redistribution of cations between octahedral and tetrahedral sites. The replacement of zinc ions produced ZnFe
2O
4, which inhibited the continued growth of nuclei, made the particle size smaller and improved the gas-sensitive response by increasing the specific surface area conductively. Many articles on metal doping have proven that proper doping can reduce particle size and improve gas sensing performance [
96,
97,
98]. A few experiments [
99,
100] have proved that when the selected doped metal is inconsistent with the original semiconductor material, there will be a reduction in sensitivity such as the limitation of the sensor’s conduction function, making the gas-sensing properties of the composite material inferior to those when it is not doped. The specific impact can be seen in
Figure 22.
5. Conclusions
This article mainly introduces four aspects, including the basic introduction of the spinel structure, the gas sensing mechanism, six common morphologies including nanoparticles, nanosheets, core-shell structures, etc., and four methods to improve performance.
A consistent nanostructure and morphology are vital for gas sensing performance, so spinels with a controllable morphology are gradually studied. In the synthesis, the hard template method and the soft template method are mainly used because both methods can play a decisive role in morphology. When the direct synthesis cannot continue to improve the gas-sensitive performance, doped material can be considered.
At present, only some of the common spinel structures have been studied to a certain extent. More spinel structures are rarely used in gas sensing because of high synthesis temperature and low response. Therefore, the current ability to control the morphology of the material effectively and the improvement of the gas response is the direction that should continue to be strengthened for spinel-type materials. In addition, the spinel structure is relatively complex, and there is no perfectly accurate theory for the gas sensing mechanism, so in-depth research should be carried out on the theoretical model.
Author Contributions
Writing—review and editing, Z.Y.; funding acquisition, Z.Y. and F.M.; supervision, Z.Y. and F.M.; investigation, Y.L.; resources, Y.L.; writing—original draft preparation, Y.L.; project administration, F.M.; validation, Z.Y.; conceptualization, Y.L.; formal analysis, Y.L. All authors have read and agreed to the published version of the manuscript.
Funding
This work was supported by the National Natural Science Foundation of China (61973058, 61833006 and 61673367), the Natural Science Foundation of Liaoning Province (2020-KF-11-04), the Fundamental Research Funds for the Central Universities in China (N180408018, N2004019, and N2004028), Liao Ning Revitalization Talents Program (XLYC1807198) and CAST-BISEE Innovation Foundation (CAST-BISEE2019-007).
Conflicts of Interest
The authors declare no conflict of interest.
References
- Yuan, Z.; Li, R.; Meng, F.; Zhang, J.; Zuo, K.; Han, E. Approaches to Enhancing Gas Sensing Properties: A Review. Sensors 2019, 19, 1495. [Google Scholar] [CrossRef] [Green Version]
- Debataraja, A.; Zulhendri, D.W.; Yuliarto, B.; Nugraha; Hiskia; Sunendar, B. Investigation of Nanostructured SnO2 Synthesized with Polyol Technique for CO Gas Sensor Applications. Procedia Eng. 2017, 170, 60–64. [Google Scholar] [CrossRef]
- Laborda, F.; Bolea, E. Nanomaterials|Engineered Nanomaterials. In Encyclopedia of Analytical Science, 3rd ed.; Worsfold, P., Poole, C., Townshend, A., Miró, M., Eds.; Academic Press: Oxford, UK, 2018; pp. 108–116. [Google Scholar]
- Mitra; Sachinath. Chapter 9 AB2X4 structure. In Developments in Geochemistry; Mitra, S., Ed.; Elsevier: Amsterdam, The Netherlands, 2004; Volume 9, pp. 673–709. [Google Scholar]
- Rathore, D.; Kurchania, R.; Pandey, R.K. Gas Sensing Properties of Size Varying CoFe2O4 Nanoparticles. IEEE Sens. J. 2015, 15, 4961–4966. [Google Scholar] [CrossRef]
- Šutka, A.; Gross, K.A. Spinel ferrite oxide semiconductor gas sensors. Sens. Actuators B Chem. 2016, 222, 95–105. [Google Scholar] [CrossRef]
- Hauser, B.G.; Farha, O.K.; Exley, J.; Hupp, J.T. Thermally Enhancing the Surface Areas of Yamamoto-Derived Porous Organic Polymers. Chem. Mater. 2013, 25, 12–16. [Google Scholar] [CrossRef]
- Lu, W.; Yuan, D.; Zhao, D.; Schilling, C.I.; Plietzsch, O.; Muller, T.; Bräse, S.; Guenther, J.; Blümel, J.; Krishna, R.; et al. Porous Polymer Networks: Synthesis, Porosity, and Applications in Gas Storage/Separation. Chem. Mater. 2010, 22, 5964–5972. [Google Scholar] [CrossRef]
- Kaur, P.; Hupp, J.T.; Nguyen, S.T. Porous Organic Polymers in Catalysis: Opportunities and Challenges. ACS Catal. 2011, 1, 819–835. [Google Scholar] [CrossRef]
- Zhang, Y.; Riduan, S.N. Functional porous organic polymers for heterogeneous catalysis. Chem. Soc. Rev. 2012, 41, 2083–2094. [Google Scholar] [CrossRef]
- Ballarini, N.; Cavani, F.; Passeri, S.; Pesaresi, L.; Lee, A.F.; Wilson, K. Phenol methylation over nanoparticulate CoFe2O4 inverse spinel catalysts: The effect of morphology on catalytic performance. Appl. Catal. A 2009, 366, 184–192. [Google Scholar] [CrossRef]
- Yang, L.; Xie, Y.; Zhao, H.; Wu, X.; Wang, Y. Preparation and gas-sensing properties of NiFe2O4 semiconductor materials. Solid·State Electron. 2005, 49, 1029–1033. [Google Scholar] [CrossRef]
- Darshane, S.L.; Deshmukh, R.G.; Suryavanshi, S.S.; Mulla, I.S. Gas-Sensing Properties of Zinc Ferrite Nanoparticles Synthesized by the Molten-Salt Route. J. Am. Ceram. Soc. 2008, 91, 2724–2726. [Google Scholar] [CrossRef]
- Baruwati, B.; Reddy, K.M.; Manorama, S.V.; Singh, R.K.; Parkash, O. Tailored conductivity behavior in nanocrystalline nickel ferrite. Appl. Phys. Lett. 2004, 85, 2833–2835. [Google Scholar] [CrossRef]
- Liu, Y.; Wang, H.; Yang, Y.; Liu, Z.; Yang, H.; Shen, G.; Yu, R. Hydrogen sulfide sensing properties of NiFe2O4 nanopowder doped with noble metals. Sens. Actuators B Chem. 2004, 102, 148–154. [Google Scholar] [CrossRef]
- Patil, J.Y.; Nadargi, D.Y.; Gurav, J.L.; Mulla, I.S.; Suryavanshi, S.S. Glycine combusted ZnFe2O4 gas sensor: Evaluation of structural, morphological and gas response properties. Ceram. Int. 2014, 40, 10607–10613. [Google Scholar] [CrossRef]
- Lazarova, T.; Kovacheva, D.; Georgieva, M.; Tzankov, D.; Tyuliev, G.; Spassova, I.; Naydenov, A. Tunable nanosized spinel manganese ferrites synthesized by solution combustion method. Appl. Surf. Sci. 2019, 496, 143571. [Google Scholar] [CrossRef]
- Zhang, J.; Song, J.; Niu, H.; Mao, C.; Zhang, S.; Shen, Y. ZnFe2O4 nanoparticles: Synthesis, characterization, and enhanced gas sensing property for acetone. Sens. Actuators B Chem. 2015, 221, 55–62. [Google Scholar] [CrossRef] [Green Version]
- An, D.; Wang, Q.; Tong, X.; Zhou, Q.; Li, Z.; Zou, Y.; Lian, X.; Li, Y. Synthesis of Zn2SnO4 via a co-precipitation method and its gas-sensing property toward ethanol. Sens. Actuators B Chem. 2015, 213, 155–163. [Google Scholar] [CrossRef]
- Ponmudi, S.; Sivakumar, R.; Sanjeeviraja, C.; Gopalakrishnan, C.; Jeyadheepan, K. Facile fabrication of spinel structured n-type CuAl2O4 thin film with nano-grass like morphology by sputtering technique. Appl. Surf. Sci. 2019, 483, 601–615. [Google Scholar] [CrossRef]
- Mintcheva, N.; Aljulaih, A.A.; Bito, S.; Honda, M.; Kondo, T.; Iwamori, S.; Kulinich, S.A. Nanomaterials produced by laser beam ablating Sn-Zn alloy in water. J. Alloys Compd. 2018, 747, 166–175. [Google Scholar] [CrossRef]
- Wang, S.; Zhang, J.; Yang, J.; Gao, X.; Zhang, H.; Wang, Y.; Zhu, Z. Spinel ZnFe2O4 nanoparticle-decorated rod-like ZnO nanoheterostructures for enhanced gas sensing performances. RSC Adv. 2015, 5, 10048–10057. [Google Scholar] [CrossRef]
- Zou, T.; Zhao, R.; Wang, Z.; Zhao, R.; Wang, Z.; Yang, Y.; Xing, X.; Wang, Y. Sensitive and selective n-butanol gas detection based on ZnO nanocrystalline synthesized by a low-temperature solvothermal method. Phys. E Low Dimens. Syst. Nanostruct. 2018, 103, 143–150. [Google Scholar] [CrossRef]
- Wang, L.; Li, J.; Wang, Y.; Yu, K.; Tang, X.; Zhang, Y.; Wang, S.; Wei, C. Construction of 1D SnO2-coated ZnO nanowire heterojunction for their improved n-butylamine sensing performances. Sci. Rep. 2016, 6, 35079. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Choi, P.G.; Izu, N.; Shirahata, N.; Masuda, Y. Fabrication and H2-Sensing Properties of SnO2 Nanosheet Gas Sensors. ACS Omega 2018, 3, 14592–14596. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, Y.; Liu, F.; Yang, Q.; Gao, Y.; Sun, P.; Zhang, T.; Lu, G. Mesoporous ZnFe2O4 prepared through hard template and its acetone sensing properties. Mater. Lett. 2016, 183, 378–381. [Google Scholar] [CrossRef]
- Wu, M.R.; Li, W.Z.; Tung, C.Y.; Huang, C.Y.; Chiang, Y.H.; Liu, P.L.; Horng, R.H. NO gas sensor based on ZnGa2O4 epilayer grown by metalorganic chemical vapor deposition. Sci. Rep. 2019, 9, 7459. [Google Scholar] [CrossRef] [PubMed]
- Xu, T.T.; Zhang, X.F.; Dong, X.; Deng, Z.P.; Huo, L.H.; Gao, S. Enhanced H2S gas-sensing performance of Zn2SnO4 hierarchical quasi-microspheres constructed from nanosheets and octahedra. J. Hazard. Mater. 2019, 361, 49–55. [Google Scholar] [CrossRef]
- Jiang, Y.; He, C.; Sun, R.; Xie, Z.; Zheng, L. Synthesis of Zn2SnO4 nanoplate-built hierarchical cube-like structures with enhanced gas-sensing property. Mater. Chem. Phys. 2012, 136, 698–704. [Google Scholar] [CrossRef]
- Korotcenkov, G. Gas response control through structural and chemical modification of metal oxide films: State of the art and approaches. Sens. Actuators B Chem. 2005, 107, 209–232. [Google Scholar] [CrossRef]
- Chen, C.; Li, G.; Li, J.; Liu, Y. One-step synthesis of 3D flower-like Zn2SnO4 hierarchical nanostructures and their gas sensing properties. Ceram. Int. 2015, 41, 1857–1862. [Google Scholar] [CrossRef]
- Yang, H.; Ma, S.; Jiao, H.; Yang, G.; Li, W.; Jin, W.; Jiang, X.; Wang, T. Self-assembly of Zn2SnO4 hollow microcubes and enhanced gas-sensing performances. Mater. Lett. 2016, 182, 264–268. [Google Scholar] [CrossRef]
- Yang, X.; Gao, H.; Zhao, L.; Wang, T.; Sun, P.; Liu, F.; Lu, G. Enhanced gas sensing properties of monodisperse Zn2SnO4 octahedron functionalized by PdO nanoparticals. Sens. Actuators B Chem. 2018, 266, 302–310. [Google Scholar] [CrossRef]
- Lai, X.Y.; Halpert, J.E.; Wang, D. Recent advances in micro-/nano-structured hollow spheres for energy applications: From simple to complex systems. Energy Environ. Sci. 2012, 5, 9944. [Google Scholar] [CrossRef]
- Xie, F.; Qi, M.; Li, W.; Wang, K.; Yu, Z.; Liu, B. Classification, Fabrication Methods and Applications of Inorganic Hollow Spheres. Prog. Chem. 2011, 23, 2522–2533. [Google Scholar]
- Yang, X.; Zhang, S.; Yu, Q.; Sun, P.; Liu, F.; Lu, H.; Yan, X.; Zhou, X.; Liang, X.; Gao, Y.; et al. Solvothermal synthesis of porous CuFe2O4 nanospheres for high performance acetone sensor. Sens. Actuators B Chem. 2018, 270, 538–544. [Google Scholar] [CrossRef]
- Zhou, X.; Liu, J.; Wang, C.; Sun, P.; Hu, X.; Li, X.; Shimanoe, K.; Yamazoe, N.; Lu, G. Highly sensitive acetone gas sensor based on porous ZnFe2O4 nanospheres. Sens. Actuators B Chem. 2015, 206, 577–583. [Google Scholar] [CrossRef]
- Liu, T.; Liu, J.; Liu, Q.; Song, D.; Zhang, H.; Zhang, H.; Wang, J. Synthesis, characterization and enhanced gas sensing performance of porous ZnCo2O4 nano/microspheres. Nanoscale 2015, 7, 19714–19721. [Google Scholar] [CrossRef]
- Zhang, Y.; Jia, C.; Wang, Q.; Kong, Q.; Chen, G.; Guan, H.; Dong, C. MOFs-Derived Porous NiFe2O4 Nano-Octahedrons with Hollow Interiors for an Excellent Toluene Gas Sensor. Nanomaterials 2019, 9, 1059. [Google Scholar] [CrossRef] [Green Version]
- Sahoo, R.; Santra, S.; Ray, C.; Pal, A.; Negishi, Y.; Ray, S.K.; Pal, T. Hierarchical growth of ZnFe2O4 for sensing applications. New J. Chem. 2016, 40, 1861–1871. [Google Scholar] [CrossRef]
- Liu, C.; Wang, B.; Wang, T.; Liu, J.; Sun, P.; Chuai, X.; Lu, G. Enhanced gas sensing characteristics of the flower-like ZnFe2O4/ZnO microstructures. Sens. Actuators B Chem. 2017, 248, 902–909. [Google Scholar] [CrossRef]
- Ma, Z.; Shao, G.; Fan, Y.; Wang, G.; Song, J.; Shen, D. Construction of Hierarchical alpha-MnO2 Nanowires@Ultrathin delta-MnO2 Nanosheets Core-Shell Nanostructure with Excellent Cycling Stability for High-Power Asymmetric Supercapacitor Electrodes. ACS Appl. Mater. Interfaces 2016, 8, 9050–9058. [Google Scholar] [CrossRef]
- Guan, C.; Xia, X.; Meng, N.; Zeng, Z.; Cao, X.; Soci, C.; Zhang, H.; Fan, H.J. Hollow core–shell nanostructure supercapacitor electrodes: Gap matters. Energy Environ. Sci. 2012, 5, 9085–9090. [Google Scholar] [CrossRef]
- Liu, S.; Feng, J.; Bian, X.; Liu, J.; Xu, H.; An, Y. A controlled red phosphorus@Ni–P core@shell nanostructure as an ultralong cycle-life and superior high-rate anode for sodium-ion batteries. Energy Environ. Sci. 2017, 10, 1222–1233. [Google Scholar] [CrossRef]
- Xie, H.; He, W.; Chen, G. Preparation for Magnetic Nanoparticles Fe3O4and Fe3O4@SiO2and Heterogeneous Fenton Catalytic Degradation of Methylene Blue. J. Chin. Chem. Soc. 2015, 62, 1144–1148. [Google Scholar] [CrossRef]
- Hu, Y.; Wang, H.; Liu, D.; Lin, G.; Wan, J.; Jiang, H.; Lai, X.; Hao, S.; Liu, X. Lychee-like ZnO/ZnFe2O4 core-shell hollow microsphere for improving acetone gas sensing performance. Ceram. Int. 2020, 46, 5960–5967. [Google Scholar] [CrossRef]
- Zhou, X.; Wang, B.Q.; Sun, H.B.; Wang, C.; Sun, P.; Li, X.W.; Hu, X.L.; Lu, G.Y. Template-free synthesis of hierarchical ZnFe2O4 yolk-shell microspheres for high-sensitivity acetone sensors. Nanoscale 2016, 8, 5446–5453. [Google Scholar] [CrossRef]
- Si, Y.; Chen, M.; Wu, L. Syntheses and biomedical applications of hollow micro-/nano-spheres with large-through-holes. Chem. Soc. Rev. 2016, 45, 690–714. [Google Scholar] [CrossRef]
- Wang, X.; Wang, Y.; Yang, L.; Wang, K.; Lou, X.; Cai, B. Template-free synthesis of homogeneous yolk–shell TiO2 hierarchical microspheres for high performance lithium ion batteries. J. Power Sources 2014, 262, 72–78. [Google Scholar] [CrossRef]
- Lian, S.; Li, H.; He, X.; Kang, Z.; Liu, Y.; Tong Lee, S. Hematite homogeneous core/shell hierarchical spheres: Surfactant-free solvothermal preparation and their improved catalytic property of selective oxidation. J. Solid State Chem. 2012, 185, 117–123. [Google Scholar] [CrossRef]
- Zhang, G.; Li, C.; Cheng, F.; Chen, J. ZnFe2O4 tubes: Synthesis and application to gas sensors with high sensitivity and low-energy consumption. Sens. Actuators B Chem. 2007, 120, 403–410. [Google Scholar] [CrossRef]
- Liu, F.; Chu, X.; Dong, Y.; Zhang, W.; Sun, W.; Shen, L. Acetone gas sensors based on graphene-ZnFe2O4 composite prepared by solvothermal method. Sens. Actuators B Chem. 2013, 188, 469–474. [Google Scholar] [CrossRef]
- Nakate, U.T.; Bulakhe, R.N.; Lokhande, C.D.; Kale, S.N. Au sensitized ZnO nanorods for enhanced liquefied petroleum gas sensing properties. Appl. Surf. Sci. 2016, 371, 224–230. [Google Scholar] [CrossRef]
- Tarwal, N.L.; Patil, P.S. Enhanced photoelectrochemical performance of Ag–ZnO thin films synthesized by spray pyrolysis technique. Electrochim. Acta 2011, 56, 6510–6516. [Google Scholar] [CrossRef]
- Peng, X.; Xu, J.; Zang, H.; Wang, B.; Wang, Z. Structural and PL properties of Cu-doped ZnO films. J. Lumin. 2008, 128, 297–300. [Google Scholar] [CrossRef]
- Tarwal, N.L.; Devan, R.S.; Ma, Y.R.; Patil, R.S.; Karanjkar, M.M.; Patil, P.S. Spray deposited localized surface plasmonic Au–ZnO nanocomposites for solar cell application. Electrochim. Acta 2012, 72, 32–39. [Google Scholar] [CrossRef]
- Wu, K.; Li, J.; Zhang, C. Zinc ferrite based gas sensors: A review. Ceram. Int. 2019, 45, 11143–11157. [Google Scholar] [CrossRef]
- Liu, T.; Liu, J.; Liu, Q.; Li, R.; Zhang, H.; Jing, X.; Wang, J. Shape-controlled fabrication and enhanced gas sensing properties of uniform sphere-like ZnFe2O4 hierarchical architectures. Sens. Actuators B Chem. 2017, 250, 111–120. [Google Scholar] [CrossRef]
- Qu, F.; Shang, W.; Thomas, T.; Ruan, S.; Yang, M. Self-template derived ZnFe2O4 double-shell microspheres for chemresistive gas sensing. Sens. Actuators B Chem. 2018, 265, 625–631. [Google Scholar] [CrossRef]
- Guan, Y.; Yin, C.; Cheng, X.; Liang, X.; Diao, Q.; Zhang, H.; Lu, G. Sub-ppm H2S sensor based on YSZ and hollow balls NiMn2O4 sensing electrode. Sens. Actuators B Chem. 2014, 193, 501–508. [Google Scholar] [CrossRef]
- Yang, X.; Yu, Q.; Zhang, S.; Sun, P.; Lu, H.; Yan, X.; Liu, F.; Zhou, X.; Liang, X.; Gao, Y.; et al. Highly sensitive and selective triethylamine gas sensor based on porous SnO2/Zn2SnO4 composites. Sens. Actuators B Chem. 2018, 266, 213–220. [Google Scholar] [CrossRef]
- Hu, J.; Zou, C.; Su, Y.; Li, M.; Hu, N.; Ni, H.; Yang, Z.; Zhang, Y. Enhanced NO2 sensing performance of reduced graphene oxide by in situ anchoring carbon dots. J. Mater. Chem. C 2017, 5, 6862–6871. [Google Scholar] [CrossRef]
- Wu, J.; Tao, K.; Guo, Y.Y.; Li, Z.; Wang, X.T.; Luo, Z.Z.; Feng, S.L.; Du, C.L.; Chen, D.; Miao, J.M.; et al. A 3D Chemically Modified Graphene Hydrogel for Fast, Highly Sensitive, and Selective Gas Sensor. Adv. Sci. 2017, 4, 1600319. [Google Scholar] [CrossRef] [PubMed]
- Wang, Z.; Sackmann, A.; Gao, S.; Weimar, U.; Lu, G.; Liu, S.; Zhang, T.; Barsan, N. Study on highly selective sensing behavior of ppb-level oxidizing gas sensors based on Zn2SnO4 nanoparticles immobilized on reduced graphene oxide under humidity conditions. Sens. Actuators B Chem. 2019, 285, 590–600. [Google Scholar] [CrossRef]
- Hummers, W., Jr.; Offeman, R. Preparation of Graphitic Oxide. J. Am. Chem. Soc. 1958, 80, 1339. [Google Scholar] [CrossRef]
- Wu, J.; Li, Z.; Xie, X.; Tao, K.; Liu, C.; Khor, K.A.; Miao, J.; Norford, L.K. 3D superhydrophobic reduced graphene oxide for activated NO2 sensing with enhanced immunity to humidity. J. Mater. Chem. A 2018, 6, 478–488. [Google Scholar] [CrossRef]
- Yan, W.; Worsley, M.A.; Pham, T.; Zettl, A.; Carraro, C.; Maboudian, R. Effects of ambient humidity and temperature on the NO2 sensing characteristics of WS2/graphene aerogel. Appl. Surf. Sci. 2018, 450, 372–379. [Google Scholar] [CrossRef]
- Zhou, Y.; Liu, G.; Zhu, X.; Guo, Y. Ultrasensitive NO2 gas sensing based on rGO/MoS2 nanocomposite film at low temperature. Sens. Actuators B Chem. 2017, 251, 280–290. [Google Scholar] [CrossRef]
- Zhu, X.; Guo, Y.; Ren, H.; Gao, C.; Zhou, Y. Enhancing the NO2 gas sensing properties of rGO/SnO2 nanocomposite films by using microporous substrates. Sens. Actuators B Chem. 2017, 248, 560–570. [Google Scholar] [CrossRef]
- Zhu, H.; Li, Q.; Ren, Y.; Gao, Q.; Chen, J.; Wang, N.; Deng, J.; Xing, X. A New Insight into Cross-Sensitivity to Humidity of SnO2 Sensor. Small 2018, 14, e1703974. [Google Scholar] [CrossRef]
- Wang, Z.; Zhang, T.; Zhao, C.; Han, T.; Fei, T.; Liu, S.; Lu, G. Rational synthesis of molybdenum disulfide nanoparticles decorated reduced graphene oxide hybrids and their application for high-performance NO2 sensing. Sens. Actuators B Chem. 2018, 260, 508–518. [Google Scholar] [CrossRef]
- Chu, X.; Hu, R.; Wang, J.; Dong, Y.; Zhang, W.; Bai, L.; Sun, W. Preparation and gas sensing properties of graphene-Zn2SnO4 composite materials. Sens. Actuators B Chem. 2017, 251, 120–126. [Google Scholar] [CrossRef]
- Tuncolu, İ.G.; Aciksari, C.; Suvaci, E.; Ozel, E.; Rembeza, S.I.; Rembeza, E.S.; Plotnikova, E.Y.; Kosheleva, N.N.; Svistova, T.V. Synthesis of Zn2SnO4 powders via hydrothermal method for ceramic targets. J. Eur. Ceram. Soc. 2015, 35, 3885–3892. [Google Scholar] [CrossRef]
- Wang, L.; Zhou, T.; Zhang, R.; Lou, Z.; Deng, J.; Zhang, T. Comparison of toluene sensing performances of zinc stannate with different morphology-based gas sensors. Sens. Actuators B Chem. 2016, 227, 448–455. [Google Scholar] [CrossRef]
- Zhao, Q.; Ju, D.; Song, X.; Deng, X.; Ding, M.; Xu, X.; Zeng, H. Polyhedral Zn2SnO4: Synthesis, enhanced gas sensing and photocatalytic performance. Sens. Actuators B Chem. 2016, 229, 627–634. [Google Scholar] [CrossRef]
- Qu, F.; Thomas, T.; Zhang, B.; Zhou, X.; Zhang, S.; Ruan, S.; Yang, M. Self-sacrificing templated formation of Co3O4/ZnCo2O4 composite hollow nanostructures for highly sensitive detecting acetone vapor. Sens. Actuators B Chem. 2018, 273, 1202–1210. [Google Scholar] [CrossRef]
- Du, L.; Zhang, H.; Zhu, M.; Zhang, M. Construction of flower-like ZnSnO3/Zn2SnO4 hybrids for enhanced phenylamine sensing performance. Inorg. Chem. Front. 2019, 6, 2311–2317. [Google Scholar] [CrossRef]
- Runa, A.; Zhang, X.; Wen, G.; Zhang, B.; Fu, W.; Yang, H. Actinomorphic flower-like n-ZnO/p-ZnFe2O4 composite and its improved NO2 gas-sensing property. Mater. Lett. 2018, 225, 73–76. [Google Scholar] [CrossRef]
- Qu, F.; Jiang, H.; Yang, M. Designed formation through a metal organic framework route of ZnO/ZnCo2O4 hollow core-shell nanocages with enhanced gas sensing properties. Nanoscale 2016, 8, 16349–16356. [Google Scholar] [CrossRef]
- Zhang, D.; Wu, Z.; Zong, X.; Zhang, Y. Fabrication of polypyrrole/Zn2SnO4 nanofilm for ultra-highly sensitive ammonia sensing application. Sens. Actuators B Chem. 2018, 274, 575–586. [Google Scholar] [CrossRef]
- Boumaza, S.; Boudjemaa, A.; Bouguelia, A.; Bouarab, R.; Trari, M. Visible light induced hydrogen evolution on new hetero-system ZnFe2O4/SrTiO3. Appl. Energy 2010, 87, 2230–2236. [Google Scholar] [CrossRef]
- Alali, K.T.; Lu, Z.; Zhang, H.; Liu, J.; Liu, Q.; Li, R.; Aljebawi, K.; Wang, J. P–p heterojunction CuO/CuCo2O4 nanotubes synthesized via electrospinning technology for detecting n-propanol gas at room temperature. Inorg. Chem. Front. 2017, 4, 1219–1230. [Google Scholar] [CrossRef]
- Zhang, C.; Wu, Q.; Zheng, B.; You, J.; Luo, Y. Synthesis and acetone gas sensing properties of Ag activated hollow sphere structured ZnFe2O4. Ceram. Int. 2018, 44, 20700–20707. [Google Scholar] [CrossRef]
- Barbosa, M.S.; Suman, P.H.; Kim, J.J.; Tuller, H.L.; Varela, J.A.; Orlandi, M.O. Gas sensor properties of Ag-and Pd-decorated SnO micro-disks to NO2, H2 and CO: Catalyst enhanced sensor response and selectivity. Sens. Actuators B Chem. 2017, 239, 253–261. [Google Scholar] [CrossRef] [Green Version]
- Pajooheshpour, N.; Rezaei, M.; Hajian, A.; Afkhami, A.; Sillanpää, M.; Arduini, F.; Bagheri, H. Protein templated Au-Pt nanoclusters-graphene nanoribbons as a high performance sensing layer for the electrochemical determination of diazinon. Sens. Actuators B Chem. 2018, 275, 180–189. [Google Scholar] [CrossRef]
- Esfandiar, A.; Ghasemi, S.; Irajizad, A.; Akhavan, O.; Gholami, M.R. The decoration of TiO2/reduced graphene oxide by Pd and Pt nanoparticles for hydrogen gas sensing. Int. J. Hydrogen Energy 2012, 37, 15423–15432. [Google Scholar] [CrossRef]
- Ng, K.C.; Lin, F.-C.; Yang, P.-W.; Chuang, Y.-C.; Chang, C.-K.; Yeh, A.-H.; Kuo, C.-S.; Kao, C.-R.; Liu, C.-C.; Jeng, U.S.; et al. Fabrication of Bimetallic Au–Pd–Au Nanobricks as an Archetype of Robust Nanoplasmonic Sensors. Chem. Mater. 2018, 30, 204–213. [Google Scholar] [CrossRef]
- Rao, P.; Godbole, R.V.; Bhagwat, S. Copper doped nickel ferrite nano-crystalline thin films: A potential gas sensor towards reducing gases. Mater. Chem. Phys. 2016, 171, 260–266. [Google Scholar] [CrossRef]
- Zhang, W.; Shen, Y.; Zhang, J.; Bi, H.; Zhao, S.; Zhou, P.; Han, C.; Wei, D.; Cheng, N. Low-temperature H2S sensing performance of Cu-doped ZnFe2O4 nanoparticles with spinel structure. Appl. Surf. Sci. 2019, 470, 581–590. [Google Scholar] [CrossRef]
- Li, K.; Luo, Y.; Gao, L.; Li, T.; Duan, G. Au-Decorated ZnFe2O4 Yolk-Shell Spheres for Trace Sensing of Chlorobenzene. ACS Appl. Mater. Interfaces 2020, 12, 16792–16804. [Google Scholar] [CrossRef]
- Li, X.; Han, C.; Lu, D.; Shao, C.; Li, X.; Liu, Y. Highly electron-depleted ZnO/ZnFe2O4/Au hollow meshes as an advanced material for gas sensing application. Sens. Actuators B Chem. 2019, 297, 126769. [Google Scholar] [CrossRef]
- Kumar, E.R.; Kamzin, A.S.; Janani, K. Effect of annealing on particle size, microstructure and gas sensing properties of Mn substituted CoFe2O4 nanoparticles. J. Magn. Magn. Mater. 2016, 417, 122–129. [Google Scholar] [CrossRef]
- Ranjith Kumar, E.; Jayaprakash, R.; Sarala Devi, G.; Siva Prasada Reddy, P. Synthesis of Mn substituted CuFe2O4 nanoparticles for liquefied petroleum gas sensor applications. Sens. Actuators B Chem. 2014, 191, 186–191. [Google Scholar] [CrossRef]
- Joshi, S.; Kamble, V.B.; Kumar, M.; Umarji, A.M.; Srivastava, G. Nickel substitution induced effects on gas sensing properties of cobalt ferrite nanoparticles. J. Alloys Compd. 2016, 654, 460–466. [Google Scholar] [CrossRef]
- Deraz, N.M.; Alarifi, A. Structural, morphological and magnetic properties of nano-crystalline zinc substituted cobalt ferrite system. J. Anal. Appl. Pyrolysis 2012, 94, 41–47. [Google Scholar] [CrossRef]
- Rao, P.; Godbole, R.V.; Bhagwat, S. Chlorine gas sensing performance of palladium doped nickel ferrite thin films. J. Magn. Magn. Mater. 2016, 405, 219–224. [Google Scholar] [CrossRef]
- Jiao, W.; Zhang, L. Preparation and gas sensing properties for acetone of amorphous Ag modified NiFe2O4 sensor. Trans. Nonferr. Met. Soc. China 2012, 22, 1127–1132. [Google Scholar] [CrossRef]
- Khandekar, M.S.; Tarwal, N.L.; Mulla, I.S.; Suryavanshi, S.S. Nanocrystalline Ce doped CoFe2O4 as an acetone gas sensor. Ceram. Int. 2014, 40, 447–452. [Google Scholar] [CrossRef]
- Sutka, A.; Mezinskis, G.; Lusis, A.; Stingaciu, M. Gas sensing properties of Zn-doped p-type nickel ferrite. Sens. Actuators B Chem. 2012, 171, 354–360. [Google Scholar] [CrossRef]
- Sutka, A.; Pärna, R.; Mezinskis, G.; Kisand, V. Effects of Co ion addition and annealing conditions on nickel ferrite gas response. Sens. Actuators B Chem. 2014, 192, 173–180. [Google Scholar] [CrossRef]
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