The Incorporation of Carvacrol into Poly (vinyl alcohol) Films Encapsulated in Lecithin Liposomes
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Liposome Dispersions
2.3. Preparation of Films
2.4. Characterization of the Active Poly (vinyl alcohol) Films
2.4.1. CA Retention and Structural Arrangement
2.4.2. Thermal Behaviour
2.4.3. Functional and Optical Properties
2.4.4. Statistical Analysis
3. Results and Discussion
3.1. Microstructure
3.2. Thermal Behaviour
3.3. Functional Properties
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sample | XPVA | XCA | XL | Extracted CA | CA-Retention (%) | |
---|---|---|---|---|---|---|
(mg CA/g PVA) | (mg CA/g Dry Film) | |||||
A | 1 | - | - | - | - | - |
AL | 0,91 | - | 0,09 | - | - | - |
AL-CA5 | 0,87 | 0,04 | 0,09 | 28± 1 | 24± 1 | 55 ± 3a |
AL-CA10 | 0,84 | 0,08 | 0,08 | 57± 2 | 48± 2 | 57 ± 30a |
B | 1 | - | - | - | - | - |
BL | 0,91 | - | 0,09 | - | - | - |
BL-CA5 | 0,87 | 0,04 | 0,09 | 37± 2 | 32± 2 | 74 ± 2c |
BL-CA10 | 0,84 | 0,08 | 0,08 | 67± 2 | 61± 2 | 67 ± 3b |
Sample | First Heating Scan | Second Heating Scan | ||||
---|---|---|---|---|---|---|
Tg | Tm1 | ∆Hm (J/g PVA) | Tg | Tm | ∆Hm (J/gPVA) | |
A | 46,1 ± 0,2a | 225 ± 5a | 79 ± 1b | 72 ± 2cd | 225 ± 1d | 73 ± 2c |
AL | 47,4 ± 0,5b | 222 ± 1a | 97 ± 6c | 82 ± 1e | 221 ± 1c | 71 ± 8bc |
AL-CA5 | 48,9 ± 0,1c | 223 ± 2a | 116 ± 7d | 78 ± 2de | 221 ± 1c | 77 ± 2c |
AL-CA10 | 49,0 ± 0,6cd | 223 ± 2a | 115 ± 13d | 79 ± 2de | 220 ± 1c | 65± 10b |
B | 53,8 ± 0,4e | 183 ± 1a | 55 ± 2a | 56 ± 3a | 168 ± 1a | 25 ± 2a |
BL | 54,3 ± 0,7e | 186 ± 1a | 54 ± 13a | 64 ± 4bc | 176 ± 1b | 34 ± 4a |
BL-CA5 | 50,0 ± 0,8d | 185 ± 1a | 53 ± 7a | 58 ± 9ab | 174 ± 2b | 25 ± 1a |
BL-CA10 | 48,9 ± 0,4c | 186 ± 1a | 54 ± 5a | 58 ± 4ab | 174 ± 2b | 28 ± 2a |
Sample | Thickeness (µm) | TS (MPa) | E (%) | EM (MPa) | WVP x 103 (g/m. h. kPa) | OP x 108 (cm3/m. h. kPa) |
---|---|---|---|---|---|---|
A | 101 ± 2b | 153 ± 8f | 135 ± 6d | 80 ± 4d | 2,47 ± 0,06a | 0,38 ± 0,01a |
AL | 134 ± 2d | 131 ± 7e | 138 ± 5d | 65 ± 8C | 2,90 ± 0,30b | 2,52 ± 0,24b |
AL-CA5 | 131 ± 2d | 111 ± 10d | 137 ± 6d | 67 ± 4c | 3,60 ± 0,40c | 5,47 ± 0,04c |
AL-CA10 | 132 ± 2d | 132 ± 12e | 142 ± 8d | 63 ± 5c | 3,30 ± 0,02bc | 1,72 ± 0,03b |
B | 95 ± 2a | 44 ± 6ab | 97 ± 6b | 54 ± 5b | 2,90 ± 0,02b | 0,53 ± 0,05a |
BL | 122 ± 2c | 40 ± 4a | 86 ± 5a | 43 ± 2a | 3,50 ± 0,20c | 16,10 ± 0,90f |
BL-CA5 | 121 ± 2c | 53 ± 5b | 119 ± 4c | 42 ± 2a | 3,00 ± 0,30b | 7,45 ± 0,08d |
BL-CA10 | 124 ± 2c | 71 ± 3c | 140 ± 2d | 40 ± 2a | 3,10 ± 0,10b | 10,3 ± 0,75e |
Sample | L* | Cab* | hab* | Ti |
---|---|---|---|---|
(460 nm) | ||||
A | 88 ± 2C | 3 ± 1a | 114 ± 11e | 0,86 ± 0,01e |
AL | 78 ± 1a | 10,8 ± 0,6cd | 99 ± 2ab | 0,82 ± 0,01ab |
AL-CA5 | 78 ± 2a | 8,7 ± 0,9b | 105 ± 2d | 0,82 ± 0,01bc |
AL-CA10 | 78 ± 2a | 10,6 ± 0,9c | 100 ± 1bc | 0,81 ± 0,01a |
B | 92 ± 1d | 3,4 ± 0,5a | 104 ± 2cd | 0,86 ± 0,01e |
BL | 81 ± 1b | 11,1 ± 0,6cd | 96 ±1a | 0,84 ± 0,01d |
BL-CA5 | 81,8 ± 0,3b | 11 ± 1d | 98 ± 1ab | 0,84 ± 0,01d |
BL-CA10 | 81,0 ± 0,9b | 13 ± 1e | 96 ± 1ab | 0,83 ± 0,01c |
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Andrade, J.; González-Martínez, C.; Chiralt, A. The Incorporation of Carvacrol into Poly (vinyl alcohol) Films Encapsulated in Lecithin Liposomes. Polymers 2020, 12, 497. https://doi.org/10.3390/polym12020497
Andrade J, González-Martínez C, Chiralt A. The Incorporation of Carvacrol into Poly (vinyl alcohol) Films Encapsulated in Lecithin Liposomes. Polymers. 2020; 12(2):497. https://doi.org/10.3390/polym12020497
Chicago/Turabian StyleAndrade, Johana, Chelo González-Martínez, and Amparo Chiralt. 2020. "The Incorporation of Carvacrol into Poly (vinyl alcohol) Films Encapsulated in Lecithin Liposomes" Polymers 12, no. 2: 497. https://doi.org/10.3390/polym12020497
APA StyleAndrade, J., González-Martínez, C., & Chiralt, A. (2020). The Incorporation of Carvacrol into Poly (vinyl alcohol) Films Encapsulated in Lecithin Liposomes. Polymers, 12(2), 497. https://doi.org/10.3390/polym12020497