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Article

Solar-Light-Driven Ag9(SiO4)2NO3 for Efficient Photocatalytic Bactericidal Performance

by
Malaa M. Taki
1,
Rahman I. Mahdi
1,*,
Amar Al-Keisy
1,
Mohammed Alsultan
2,*,
Nabil Janan Al-Bahnam
3,
Wan Haliza Abd. Majid
4 and
Gerhard F. Swiegers
5,*
1
Nanotechnology and Advanced Material Research Center, University of Technology-Iraq, Baghdad 10066, Iraq
2
Department of Science, Collage of Basic Education, University of Mosul, Mosul 41002, Iraq
3
Department of Physics, Collage of Science for Women, University of Baghdad, Baghdad 10071, Iraq
4
Low Dimensional Materials Research Centre, Department of Physics, Faculty of Science, University of Malaya, Kuala Lumpur 50603, Malaysia
5
ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, University of Wollongong, Wollongong, NSW 2522, Australia
*
Authors to whom correspondence should be addressed.
J. Compos. Sci. 2022, 6(4), 108; https://doi.org/10.3390/jcs6040108
Submission received: 3 March 2022 / Revised: 26 March 2022 / Accepted: 30 March 2022 / Published: 6 April 2022
(This article belongs to the Special Issue Metal Composites)

Abstract

:
Photocatalytic materials are being investigated as effective bactericides due to their superior ability to inactivate a broad range of dangerous microbes. In this study, the following two types of bacteria were employed for bactericidal purposes: Gram-negative Escherichia coli (E. coli) and Gram-positive Staphylococcus aureus (S. aureus). The shape, crystal structure, element percentage, and optical properties of Ag9(SiO4)2NO3 were examined after it was successfully synthesized by a standard mixing and grinding processing route. Bactericidal efficiency was recorded at 100% by the following two types of light sources: solar and simulated light, with initial photocatalyst concentration of 2 µg/mL, and 97% and 95% of bactericidal activity in ultra-low photocatalyst concentration of 0.2 µg/mL by solar and simulated light, respectively, after 10 min. The survival rate was studied for 6 min, resulting in 99.8% inhibition at the photocatalyst dose of 2 µg/mL. The mechanism of bactericidal efficiency was found to be that the photocatalyst has high oxidation potential in the valence band. Consequently, holes play a significant part in bactericidal efficiency.

1. Introduction

Pathogenic diseases in water supplies have recently become a serious medical issue. It has resulted in over a million deaths worldwide [1]. Various strategies have been implemented to sterilize water resources, including chemical treatment using chlorine. Nevertheless, such a technique poses a significant risk and contributes to secondary pollution [2,3,4,5]. Thus, there is an urgent need to develop environmentally friendly approaches. Photocatalysis has recently been recognized as one of the most efficient technologies for developing bactericidal surfaces capable of effectively and rapidly inactivating bacteria [6,7,8]. Even though TiO2 nanostructures are the most extensively employed in photocatalysis, they are only active when exposed to UV irradiation, which represents only 4% of the sunlight spectrum [9,10,11,12,13,14,15]. The development and engineering of novel photocatalytic materials have been the topic of many publications. However, the practical applications of photocatalysis as antibacterial surfaces and liquids are still in development. Among the many photocatalysts, Ag-based photocatalysts are one of the most promising alternatives due to their strong photocatalytic activity and efficient visible light absorption [16]. Silver silicate compounds undergo strongly oxidative reactions [17,18,19]. They have a deep valence-band site, which means they can direct the degradation of pathogenic walls through photoinduced holes and hydroxyl radicals, while photoinduced electrons form super oxides. In general, reactive oxygen species (ROS) can degrade pathogens on surfaces or in liquids. However, lipids, proteins, and DNA can be damaged by ROS [20,21,22]. Nonetheless, silver-based oxide compounds are being largely resisted due to highly photocorrosion materials [23,24,25]. Silver silicate, on the other hand, decomposes into silver nanoparticles, which are very sensitive to pathogenic diseases [26,27,28]. Thus, silver silicate compounds are thought to be selectively appropriate for disinfection and sterilization but not for photodegradation of polluting chemicals or water splitting. Furthermore, it is believed that coating face mask tissue with silver silicate will provide excellent disinfection when exposed to sunlight. Our previous work demonstrated that Ag10Si4O13 exhibits spontaneous electronic polarization due to the distorted tetrahedral unit (SiO4) configuration [29]. Therefore, silver silicate compounds are expected to improve charge separation, resulting in enhanced photocatalysis performance. Likewise, Ag9(SiO4)2NO3 exhibits spontaneous electronic polarization and is advantageous due to a narrow band gap [30]. In this work, we present a facile, efficient, cost-effective, and practical way for the green synthesis of Ag9(SiO4)2NO3 by simply mixing raw salts and grinding them in a moisture environment using an agate mortar. The photocatalytic bactericidal characteristics, crystal formations, and morphologies were systematically investigated.

2. Experimental

2.1. Synthesis

Ag9(SiO4)2NO3 was prepared by standard mixing and grinding processing route. Typically, 4.5 mmol AgNO3 (Sigma-Aldrich Company, St. Louis, MO, USA) and 1 mmol Na2SiO3 (Sigma-Aldrich Company) were mixed and grounded in an agate mortar for 15 min in a moisture environment until the white mixture turned deep red. The obtained Ag9(SiO4)2NO3 was washed five times with distiller water and dried inside an oven at 60 °C for 24 h.

2.2. Characterization

The crystal structure and phase purity of the compounds were characterized with X-ray diffraction (XRD, GBC, MMA) using Cu Kα radiation (λ = 1.5418 Å). Field-emission scanning electron microscopy (FE-SEM, Joule-JSM-7610F) and energy dispersive spectroscopy (EDS, Bruker, XFlash 6-10) were used to analyze the morphology and elemental analyses of the samples. The UV–Vis absorption spectrum was obtained using Shimadzu-3600 UV–Vis spectrophotometer.

2.3. Photocatalytic Inactivation Performance

The spread plate method was used to evaluate antibacterial activity. E. coli and S. aureus were chosen as the indicator bacteria to represent Gram-negative and Gram-positive bacteria, respectively. The prefabricated bacterial suspension was mixed with a solution of Ag9(SiO4)2NO3 in deionized water (DI). The initial concentration of Ag9(SiO4)2NO3 was 2 µg/mL, with a final concentration of 0.2 µg/mL, and a bacterial concentration of 105 cfu/mL. A magnetic stirrer was used to continuously stir the mixed suspensions at room temperature. After 10 min, the samples were cultured in sunlight. Natural sunlight radiated from 10:00 a.m. to 13:00 p.m. on sunny days (sunlight intensity was 97 mW/cm2). Every 2 min, 50 mL of diluent-mixed suspensions was added to agar plates (Muller Hinton Agar HIMEDIA) and disseminated. Over 24 h, the plates were incubated at 37 °C. The bacterial colonies on the plates were counted to measure bacterial efficiency. The entire experiment was carried out under sterile conditions. The intensity of the light source (300 W xenon short-arc lamp, toption) was 147 mW/cm2. The same method, as indicated above, was performed using simulated light, with 15 cm distance between the simulated light and the sample.

2.4. Photocatalyst Mechanism

Three experiments were conducted in this process. In the first experiment, 10% vol of AgNO3 (1 mM) (Sigma-Aldrich Company) was used as an electron scavenger, and 100 mg of Ag9(SiO4)2NO3 was added to 100 mL of RhB (10 mg/L) (Sigma-Aldrich Company) and stirred for 30 min in the dark. Simulated light was used to photodegrade RhB for 10 min. Secondly, 10% vol of methanol (1 Mm) (Sigma-Aldrich Company) was added as a hole scavenger, followed by the same procedure as above. The third step is repeating the first but without the scavenger. Finally, UV–Vis spectroscopy was used to evaluate the decolorization of RhB.

2.5. Calculation

Cambridge Serial Total Energy Package (CASTEP) software was used to implement the first-principle methods [31]. The exchange-correlation interaction was analyzed using the functional method of Perdew–Burke–Ernerhof (GGA-PBE) and the relativistic treatment of Koelling-Harmon. A plane-wave basis with cut-off energy of 500.0000 eV was used as well as a 3 × 3 × 3 Monkhorst–Pack k-point mesh. The pseudopotential was treated using effective core potential, assuming the system was metallic.

3. Results and Discussion

Figure 1a illustrates the powder XRD pattern of the obtained product, which can be classified as the single phase of Ag9(SiO4)2NO3 (triclinic phase, space group P-1). The most noticeable peaks of Ag9(SiO4)2NO3 at 31.2, 32.2, and 33.7, which correspond to the planes (12-1), (003), and (-121), respectively, were well matched to the standard pattern (JCPDS card no. 78–1250). There are no signs of impurities, which suggests that high purity Ag9(SiO4)2NO3 was obtained. The morphology of the Ag9(SiO4)2NO3 is shown in an FE-SEM image (Figure 1b), which confirmed the particle size in nanoscale and ranged in size from 50 to 200 nm, with irregularly tending to have a sheet-like shape. It should also be noted that several small nanoparticles are seen on the surface of the nanosheets, which are most likely silver nanoparticles formed during SEM characterization by the reduction of Ag+ in Ag9(SiO4)2NO3 under high-energy electron-beam irradiation, which is frequent in Ag–sulfur compounds. To further confirm the purification of the materials, elemental assessment was conducted (Figure 1c). The percentages of each element were 42%, 3.2%, 54%, and 0.8% for Ag, Si, O, and N, respectively, which corresponds with the compound percentage. There was no indication of additional elements, confirming the excellent purity of Ag9(SiO4)2NO3. The optical characteristics of the material are presented in Figure 1d. The results clearly show full absorption in the UV–Vis range indicating that the material exhibits excellent optical properties.
As shown in Figure 2, the tested concentrations (E. coli and S. aureus) have high sensitivity to both simulated and solar light. After repeated dilution, the cell population was estimated by colony counting on agar plates. Both the first two high concentrations of 0.06 and 0.04 mg/mL were found to be 100% effective in killing Gram-positive and Gram-negative bacteria, as shown in Figure 2a–d, under simulated and solar light. There were three separate experiments, each of which was referred to as the “first”, “second”, and “third” attempt; the 2 µg/mL and 0.2 µg/mL concentrations had differing bactericidal properties. The bactericidal efficiency of E.coli and S.aureus was 99% and 97%, respectively, at 2 µg/mL, whereas at 0.2 µg/mL, the bactericidal efficiency of E.coli and S.aureus was 97% and 97.5%, respectively. Solar light appears to be better than simulated light, which may be because it contains the full spectrum of light.
The survival rate vs. time was investigated at low doses of 2 µg/mL. For each kind of bacterium, the survival rate under simulated and natural light showed identical results, as shown in Figure 3. In the first 6 min, 99% of bacteria were killed, and the remaining germs were killed in the next 10 min. The photographs of E.coli colonies on an agar plate after photocatalytic bactericidal treatment with Ag9(SiO4)2NO3 are shown in Figure 4. Bacterial survival was gradually reduced over time until it was completely removed after 10 min.
According to the results, Ag9(SiO4)2NO3 demonstrates outstanding bactericidal efficacy. The mechanism of bactericidal efficiency was investigated by including holes and electron scavenger materials, which play a key role in individually depleting electrons and holes during the photocatalytic operation. Methanol was selected as the hole scavenger and AgNO3 was selected as the electron scavenger. Figure 5 demonstrates that the photodegradation of dye was almost completely controlled by holes with little effect from electrons, showing that the oxidation potential is responsible for photodegradation due to Ag9(SiO4)2NO3 having a deep valence band and a high oxidation potential.
The conduction and valence bands of Ag9(SiO4)2NO3 were estimated using DFT to confirm that it has high oxidation potential. The conduction and valence bands, respectively, are 0.2 and 1.8 Ev vs. a natural hydrogen electrode (NHE). As a result, it is thought that Ag9(SiO4)2NO3 has high oxidation potential against bacteria, and holes play a key role in its superior bactericidal abilities. Figure 6 shows the proposed photocatalyst band structure and a possible mechanism for photocatalysis reactions based on the DFT simulation. The reactive radicals, particularly the holes produced by the photocatalyst due to the absorbed photon energy, can initiate reduction/oxidation reactions on the membranes of bacterial cells or cause perturbation within the cells, resulting in severe damage, dysfunctional membranes, and ultimately, cell death.
In comparison with previous work, as indicated in Table 1, this work exhibits excellent performance. The photocatalytic bactericidal treatment was performed in the short time (10 min) and at the low concentration of 2 μg/mL. On the other hand, other silver-based components showed a longer residence period and higher concentrations. The photocatalytic activity of Ag9(SiO4)2NO3 for dye degradation has been reported to be excellent [28]. Death results because the photocatalyst has a high oxidative potential, capable of destroying the bacterial walls. [28]. The photocatalyst is thought to be an excellent bactericidal option in water or on surfaces.

4. Conclusions

In this study, we reported the efficient photocatalytic inactivation of two types of bacteria, Gram-negative (E. coli) and Gram-positive (S. aureus), under the following two forms of light: solar and simulated light. Under solar light for 10 min, ultra-low concentration of the photocatalyst was found to be 100% bactericidal for both species of bacteria. The photocatalytic mechanism was explored by monitoring the photodegradation of RhB dye, which reveals that holes play a key role in photocatalytic performance. DFT simulations revealed that Ag9(SiO4)2NO3 has high oxidation potential in the valence bands, which explains the excellent photocatalytic inactivation.

Author Contributions

Conceptualization, A.A.-K.; methodology, M.M.T.; formal analysis, R.I.M.; investigation, M.M.T.; data curation, M.A.; writing—original draft preparation, W.H.A.M.; writing—review and editing, W.H.A.M.; supervision, G.F.S.; project administration, A.A.-K.; resources, N.J.A.-B. All authors have read and agreed to the published version of the manuscript.

Funding

This work is supported by FRGS FP113-2019A (Malaysian Ministry of Higher Education), Kuala Lumpur, Malaysia.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Acknowledgments

We would like to thank University of Technology-Iraq, Baghdad, Iraq for a support of this work.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. World Health Organization. The Top 10 Causes of Death. 2019. Available online: https://www.who.int/news-room/fact-sheets/detail/the-top-10-causes-of-death (accessed on 25 May 2020).
  2. Ding, W.; Jin, W.; Cao, S.; Zhou, X.; Wang, C.; Jiang, Q.; Huang, H.; Tu, R.; Han, S.-F.; Wang, Q. Ozone disinfection of chlorine-resistant bacteria in drinking water. Water Res. 2019, 160, 339–349. [Google Scholar] [CrossRef] [PubMed]
  3. Li, D.; Zeng, S.; Gu, A.Z.; He, M.; Shi, H. Inactivation, reactivation and regrowth of indigenous bacteria in reclaimed water after chlorine disinfection of a municipal wastewater treatment plant. J. Environ. Sci. 2013, 25, 1319–1325. [Google Scholar] [CrossRef]
  4. Al-Keisy, A.; Mahdi, R.; Ahmed, D.; Al-Attafi, K.; Abd. Majid, W.H. Enhanced Photoreduction Activity in BiOI1-xFx Nanosheet for Efficient Removal of Pollutants from Aqueous Solution. ChemistrySelect 2020, 5, 9758–9764. [Google Scholar] [CrossRef]
  5. Mahdi, R.; Alsultan, M.; Al-Keisy, A.; Swiegers, G.F. Photocatalytic Hydrogen Generation from pH-Neutral Water by a Flexible Tri-Component Composite. Catal. Lett. 2020, 151, 1700–1706. [Google Scholar] [CrossRef]
  6. Kong, X.; Liu, X.; Zheng, Y.; Chu, P.K.; Zhang, Y.; Wu, S. Graphitic carbon nitride-based materials for photocatalytic antibacterial application. Mater. Sci. Eng. R Rep. 2021, 145, 100610. [Google Scholar] [CrossRef]
  7. Christy, A.J.; Suresh, S.; Nehru, L.C. Enhanced antibacterial and photocatalytic activities of nickel oxide nanostructures. Optik 2021, 237, 166731. [Google Scholar] [CrossRef]
  8. Zheng, A.L.T.; Sabidi, S.; Ohno, T.; Maeda, T.; Andou, Y. Cu2O/TiO2 decorated on cellulose nanofiber/reduced graphene hydrogel for enhanced photocatalytic activity and its antibacterial applications. Chemosphere 2022, 286, 131731. [Google Scholar] [CrossRef] [PubMed]
  9. Liu, B.; Han, X.; Mu, L.; Zhang, J.; Shi, H. TiO2 nanospheres/AgVO3 quantum dots composite with enhanced visible light photocatalytic antibacterial activity. Mater. Lett. 2019, 253, 148–151. [Google Scholar] [CrossRef]
  10. Liu, B.; Mu, L.; Han, B.; Zhang, J.; Shi, H. Fabrication of TiO2/Ag2O heterostructure with enhanced photocatalytic and antibacterial activities under visible light irradiation. Appl. Surf. Sci. 2017, 396, 1596–1603. [Google Scholar] [CrossRef]
  11. Qin, Y.; Guo, Y.; Liang, Z.; Xue, Y.; Zhang, X.; Yang, L.; Tian, J. Au nanorods decorated TiO2 nanobelts with enhanced full solar spectrum photocatalytic antibacterial activity and the sterilization file cabinet application. Chin. Chem. Lett. 2021, 32, 1523–1526. [Google Scholar] [CrossRef]
  12. Kavinkumar, V.; Verma, A.; Uma, K.; Moscow, S.; Jothivenkatachalam, K.; Fu, Y.-P. Plasmonic metallic silver induced Bi2WO6/TiO2 ternary junction towards the photocatalytic, electrochemical OER/HER, antibacterial and sensing applications. Appl. Surf. Sci. 2021, 569, 150918. [Google Scholar] [CrossRef]
  13. Ibrahem, M.A.; Rasheed, B.G.; Mahdi, R.I.; Khazal, T.M.; Omar, M.M.; O’Neill, M. Plasmonic-enhanced photocatalysis reactions using gold nanostructured films. RSC Adv. 2020, 10, 22324–22330. [Google Scholar] [CrossRef]
  14. Mahdi, R.; Mohammed, E.H.; Al-Keisy, A.; Alsultan, M.; Majid, W.H.A. Tailoring the morphology of BiNbO4 of polymorph in 2D nanosheets for enhancement of photocatalytic activity in the visible range. Phys. E Low-Dimens. Syst. Nanostruct. 2022, 136, 115009. [Google Scholar] [CrossRef]
  15. Abid, H.N.; Al-keisy, A.; Ahmed, D.S.; Salih, A.T.; Khammas, A. pH dependent synthesis and characterization of bismuth molybdate nanostructure for photocatalysis degradation of organic pollutants. Environ. Sci. Pollut. Res. 2022, 1–11. [Google Scholar] [CrossRef] [PubMed]
  16. Wang, Q.; Ji, S.; Li, S.; Zhou, X.; Yin, J.; Liu, P.; Shi, W.; Wu, M.; Shen, L. Electrospinning visible light response Bi2MoO6/Ag3PO4 composite photocatalytic nanofibers with enhanced photocatalytic and antibacterial activity. Appl. Surf. Sci. 2021, 569, 150955. [Google Scholar] [CrossRef]
  17. Zhu, X.; Wang, P.; Huang, B.; Ma, X.; Qin, X.; Zhang, X.; Dai, Y. Synthesis of novel visible light response Ag10Si4O13 photocatalyst. Appl. Catal. B Environ. 2016, 199, 315–322. [Google Scholar] [CrossRef]
  18. Li, C.; Zhang, Y.; Jin, H.; Kang, W.; Kong, W.; Li, W. Fabrication and visible-light photocatalytic properties of nano-Ag10Si4O13. Ceram. Int. 2021, 47, 32460–32465. [Google Scholar] [CrossRef]
  19. Kim, T.-G.; Yeon, D.-H.; Kim, T.; Lee, J.; Im, S.-J. Silver silicates with three-dimensional d10-d10 interactions as visible light active photocatalysts for water oxidation. Appl. Phys. Lett. 2013, 103, 043904. [Google Scholar] [CrossRef]
  20. Du, J.; Ma, S.; Yan, Y.; Li, K.; Zhao, F.; Zhou, J. Corn-silk-templated synthesis of TiO2 nanotube arrays with Ag3PO4 nanoparticles for efficient oxidation of organic pollutants and pathogenic bacteria under solar light. Colloids Surf. A Physicochem. Eng. Asp. 2019, 572, 237–249. [Google Scholar] [CrossRef]
  21. Ganguly, P.; Byrne, C.; Breen, A.; Pillai, S.C. Antimicrobial activity of photocatalysts: Fundamentals, mechanisms, kinetics and recent advances. Appl. Catal. B Environ. 2018, 225, 51–75. [Google Scholar] [CrossRef]
  22. Karunakaran, C.; Vinayagamoorthy, P. Perforated ZnFe2O4/ZnO hybrid nanosheets: Enhanced charge-carrier lifetime, photocatalysis, and bacteria inactivation. Appl. Phys. A 2017, 123, 472. [Google Scholar] [CrossRef]
  23. Katsumata, H.; Taniguchi, M.; Kaneco, S.; Suzuki, T. Photocatalytic degradation of bisphenol A by Ag3PO4 under visible light. Catal. Commun. 2013, 34, 30–34. [Google Scholar] [CrossRef]
  24. Xu, C.; Liu, Y.; Huang, B.; Li, H.; Qin, X.; Zhang, X.; Dai, Y. Preparation, characterization, and photocatalytic properties of silver carbonate. Appl. Surf. Sci. 2011, 257, 8732–8736. [Google Scholar] [CrossRef]
  25. Li, J.; Fang, W.; Yu, C.; Zhou, W.; Zhu, L.; Xie, Y. Ag-based semiconductor photocatalysts in environmental purification. Appl. Surf. Sci. 2015, 358, 46–56. [Google Scholar] [CrossRef]
  26. Morones, J.R.; Elechiguerra, J.L.; Camacho, A.; Holt, K.; Kouri, J.B.; Ramírez, J.T.; Yacaman, M.J. The bactericidal effect of silver nanoparticles. Nanotechnology 2005, 16, 2346–2353. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  27. Lalueza, P.; Monzón, M.; Arruebo, M.; Santamaría, J. Bactericidal effects of different silver-containing materials. Mater. Res. Bull. 2011, 46, 2070–2076. [Google Scholar] [CrossRef]
  28. Liao, C.; Li, Y.; Tjong, S.C. Bactericidal and Cytotoxic Properties of Silver Nanoparticles. Int. J. Mol. Sci. 2019, 20, 449. [Google Scholar] [CrossRef] [Green Version]
  29. Al-keisy, A.; Ren, L.; Cui, D.; Xu, Z.; Xu, X.; Su, X.; Hao, W.; Dou, S.X.; Du, Y. A ferroelectric photocatalyst Ag10Si4O13 with visible-light photooxidation properties. J. Mater. Chem. A 2016, 4, 10992–10999. [Google Scholar] [CrossRef]
  30. Zhu, X.; Wang, Z.; Huang, B.; Wei, W.; Dai, Y.; Zhang, X.; Qin, X. Synthesis of Ag9(SiO4)2NO3 through a reactive flux method and its visible-light photocatalytic performances. APL Mater. 2015, 3, 104413. [Google Scholar] [CrossRef] [Green Version]
  31. Clark, S.J.; Segall, M.D.; Pickard, C.J.; Hasnip, P.J.; Probert, M.I.; Refson, K.; Payne, M.C. First principles methods using CASTEP. Z. Krist.-Cryst. Mater. 2005, 220, 567–570. [Google Scholar] [CrossRef] [Green Version]
  32. Jin, Y.; Dai, Z.; Liu, F.; Kim, H.; Tong, M.; Hou, Y. Bactericidal mechanisms of Ag2O/TNBs under both dark and light conditions. Water Res. 2013, 47, 1837–1847. [Google Scholar] [CrossRef] [PubMed]
  33. Ma, S.; Zhan, S.; Xia, Y.; Wang, P.; Hou, Q.; Zhou, Q. Enhanced photocatalytic bactericidal performance and mechanism with novel Ag/ZnO/g-C3N4 composite under visible light. Catal. Today 2019, 330, 179–188. [Google Scholar] [CrossRef]
  34. Xu, X.; Wang, S.; Yu, X.; Dawa, J.; Gui, D.; Tang, R. Biosynthesis of Ag deposited phosphorus and sulfur co-doped g-C3N4 with enhanced photocatalytic inactivation performance under visible light. Appl. Surf. Sci. 2020, 501, 144245. [Google Scholar] [CrossRef]
Figure 1. (a) XRD pattern and visual crystal structure of Ag9(SiO4)2NO3. (b) FE-SEM image. (c) EDX element percentage of Ag9(SiO4)2NO3. (d) UV–Vis spectra and inset band-gap measurement of Ag9(SiO4)2NO3.
Figure 1. (a) XRD pattern and visual crystal structure of Ag9(SiO4)2NO3. (b) FE-SEM image. (c) EDX element percentage of Ag9(SiO4)2NO3. (d) UV–Vis spectra and inset band-gap measurement of Ag9(SiO4)2NO3.
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Figure 2. The bactericidal efficiency of (a,b) E. coli and S. aureus under simulated light. (c,d) E. coli and S. aureus exposed to sunlight for 10 min by Ag9(SiO4)2NO3.
Figure 2. The bactericidal efficiency of (a,b) E. coli and S. aureus under simulated light. (c,d) E. coli and S. aureus exposed to sunlight for 10 min by Ag9(SiO4)2NO3.
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Figure 3. Survival rates of E.coli and S.aureus in the presence of Ag9(SiO4)2NO3 in simulated and sunlight, respectively.
Figure 3. Survival rates of E.coli and S.aureus in the presence of Ag9(SiO4)2NO3 in simulated and sunlight, respectively.
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Figure 4. Photographs of E.coli colonies on an agar plate after photocatalytic bactericidal treatment with Ag9(SiO4)2NO3 for (a) 10 min, (b) 8 min, (c) 6 min, and (d) 4 min.
Figure 4. Photographs of E.coli colonies on an agar plate after photocatalytic bactericidal treatment with Ag9(SiO4)2NO3 for (a) 10 min, (b) 8 min, (c) 6 min, and (d) 4 min.
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Figure 5. Charge carrier trapping experiment, AgNO3 as electron scavenger and methanol as hole scavenger of Ag9(SiO4)2NO3.
Figure 5. Charge carrier trapping experiment, AgNO3 as electron scavenger and methanol as hole scavenger of Ag9(SiO4)2NO3.
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Figure 6. The photocatalytic bactericidal mechanism of Ag9(SiO4)2NO3 under sunlight.
Figure 6. The photocatalytic bactericidal mechanism of Ag9(SiO4)2NO3 under sunlight.
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Table 1. Comparison of the performance of Ag9(SiO4)2NO3 with other photocatalysts reported in the literature using (E. coli).
Table 1. Comparison of the performance of Ag9(SiO4)2NO3 with other photocatalysts reported in the literature using (E. coli).
PhotocatalystIntial Concentration (μg/mL)Initial Cell Density (cfu/mL)Final Cell Density (cfu/mL)Light SourceTime Expose (min)Ref.
Ag3PO4/TiO210106.20Solar light120[20]
Ag2O/TiO21001070300 W Xenon arc lamp, cutoff UV360[32]
Ag/ZnO/g-C3N4501070300 W Xenon arc lamp, cutoff UV120[33]
Ag deposited phosphorus and sulfur co-doped g-C3N42001070300 W Xenon arc lamp, cutoff UV60[34]
Ag9(SiO4)2NO321050Solar light10This work
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Taki, M.M.; Mahdi, R.I.; Al-Keisy, A.; Alsultan, M.; Al-Bahnam, N.J.; Majid, W.H.A.; Swiegers, G.F. Solar-Light-Driven Ag9(SiO4)2NO3 for Efficient Photocatalytic Bactericidal Performance. J. Compos. Sci. 2022, 6, 108. https://doi.org/10.3390/jcs6040108

AMA Style

Taki MM, Mahdi RI, Al-Keisy A, Alsultan M, Al-Bahnam NJ, Majid WHA, Swiegers GF. Solar-Light-Driven Ag9(SiO4)2NO3 for Efficient Photocatalytic Bactericidal Performance. Journal of Composites Science. 2022; 6(4):108. https://doi.org/10.3390/jcs6040108

Chicago/Turabian Style

Taki, Malaa M., Rahman I. Mahdi, Amar Al-Keisy, Mohammed Alsultan, Nabil Janan Al-Bahnam, Wan Haliza Abd. Majid, and Gerhard F. Swiegers. 2022. "Solar-Light-Driven Ag9(SiO4)2NO3 for Efficient Photocatalytic Bactericidal Performance" Journal of Composites Science 6, no. 4: 108. https://doi.org/10.3390/jcs6040108

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