High Molecular Weight Chitosan from Shrimp Shells: Synthesis of Para-Substituted Schiff Bases with Selective Leishmanicidal Activity and Application in CO2/O2-Selective Films
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Processing of Chitin from Shrimp Shells to Obtain Chitosan
2.2.1. Grinding and Screening
2.2.2. Deproteination and Demineralization
2.2.3. Deacetylation
2.3. Characterization of Chitosan from Shrimp Shells
2.3.1. Average Molecular Weight by Capillary Viscosimetry
2.3.2. Degree of Deacetylation (DD) by IR and Raman Spectroscopy
2.3.3. Degree Deacetylation (DD) by Potentiometric Titration Method
2.3.4. Degree of Deacetylation (DD) by Elemental Analysis (EA)
2.4. Synthesis and Characterization of Schiff Base of Chitosan
2.4.1. General Procedure for the Synthesis of Chitosan Schiff Base Derivatives
2.4.2. Characterization by Vibrational Spectroscopy: IR and Raman
2.4.3. 1H NMR Spectroscopy
2.4.4. Characterization by Differential Scanning Calorimetry (DSC)
2.4.5. Characterization by Thermogravimetric Analysis (TGA)
2.4.6. Characterization by Elemental Analysis (EA)
2.5. Cell Viability of Schiff Bases of Chitosan
2.6. Evaluation of Leishmanicidal Activity of Schiff Bases of Chitosan
2.7. Development and Characterization of Films Based on Schiff Bases 3a–j with PVA
2.7.1. Preparation Process of Blends of Chitosan Films and 3a–j–PVA
2.7.2. Atomic Force Microscopy of Films
2.8. Evaluation of CO2/O2 Concentration Using Films Based on Schiff Base with PVA as Simulation Packing Material
2.9. Mechanical Properties of Films
3. Results and Discussion
3.1. Chitosan Obtaining
3.2. Molecular Weight by Capillary Viscosimetry of Chitosan
3.3. Degree of Deacetylation
3.3.1. Determination of the Percentage of Deacetylation by IR and Raman Vibrational Spectroscopy
3.3.2. Determination of Deacetylation Percentage by Potentiometric Titration
3.3.3. Determination of the Deacetylation Percentage by Elemental Analysis
3.4. DSC/TGA Thermogravimetric Analysis for Chitosan
3.5. Functionalization of Chitosan
3.6. Characterization of Chitosan Derivatives 3a–j
3.6.1. IR and Raman Spectroscopy
3.6.2. 1H-NMR Spectroscopy
3.6.3. Thermogravimetric Analysis (TGA) and Differential Scanning Calorimetry (DSC)
3.6.4. Elemental Analysis
3.6.5. Cytotoxicity and Leishmania Activity
3.7. Characterization of Films
3.7.1. AFM
3.7.2. CO2/O2 Concentration Using Films Based on Schiff Base with PVA as Simulation Packing Material
3.7.3. Mechanical Properties of Films
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Hernández Cocoletzi, H.; Águila Almanza, E.; Flores Agustin, O.; Viveros Nava, E.; Ramos Cassellis, E. Obtención y Caracterización de Quitosano a Partir de Exoesqueletos de Camarón. Superf. Vacío 2009, 22, 57–60. [Google Scholar]
- Andrade, R.D.; Chávez Baldovino, M.M.; Osorio, V.N. Evaluation of the Cooking and Drying Procedures to Obtain Crop Shrimp (Penaeus Sp) Heads Flour. Dyna 2007, 74, 181–186. [Google Scholar]
- Barbosa, H.F.G.; Cavalheiro, É.T.G. The Influence of Reaction Parameters on Complexation of Zn(II) Complexes with Biopolymeric Schiff Bases Prepared from Chitosan and Salicylaldehyde. Int. J. Biol. Macromol. 2019, 121, 1179–1185. [Google Scholar] [CrossRef]
- Wang, H.; Qian, J.; Ding, F. Emerging Chitosan-Based Films for Food Packaging Applications. J. Agric. Food Chem. 2018, 66, 395–413. [Google Scholar] [CrossRef]
- Alzate, L.F.; Cuervo, R.; Valencia, M.E. Extracción y Caracterización de Quitosano Fúngico Experimental y Comercial, Como Potencial Biomaterial Para Aplicaciones En Ingeniería de Tejidos. Rev. Iberoam. Polímeros 2015, 16, 112–124. [Google Scholar]
- Mousavi, P.; Rahimi Esboei, B.; Pourhajibagher, M.; Zolfaghari, A.; Shahmoradi, Z.; Namdar, F.; Ahmadi, S.; Mousavi, S.M.; Parandin, F.; Hejazi, S.H. In Vitro and in Vivo Evaluation of the Leishmanicidal and Cytotoxic Activities of Chitosan and Chitosan–Amphotericin B. AMB Express 2025, 15, 68. [Google Scholar] [CrossRef]
- Riezk, A.; Raynes, J.G.; Yardley, V.; Murdan, S.; Croft, S.L. Activity of Chitosan and Its Derivatives against Leishmania Major and Leishmania Mexicana in Vitro. Antimicrob. Agents Chemother. 2020, 64. [Google Scholar] [CrossRef]
- Heras-Mozos, R.; Gavara, R.; Hernández-Muñoz, P. Responsive Packaging Based on Imine-Chitosan Films for Extending the Shelf-Life of Refrigerated Fresh-Cut Pineapple. Food Hydrocoll. 2022, 133, 107968. [Google Scholar] [CrossRef]
- Heras-Mozos, R.; López-Carballo, G.; Hernández, R.; Gavara, R.; Hernández Muñoz, P. PH Modulates Antibacterial Activity of Hydroxybenzaldehyde Derivatives Immobilized in Chitosan Films via Reversible Schiff Bases and Its Application to Preserve Freshly-Squeezed Juice. Food Chem. 2023, 403, 134292. [Google Scholar] [CrossRef] [PubMed]
- Pawariya, V.; De, S.; Dutta, J. Chitosan-Based Schiff Bases: Promising Materials for Biomedical and Industrial Applications. Carbohydr. Polym. 2024, 323, 121395. [Google Scholar] [CrossRef]
- Fontana, R.; Marconi, P.C.R.; Caputo, A.; Gavalyan, V.B. Novel Chitosan-Based Schiff Base Compounds: Chemical Characterization and Antimicrobial Activity. Molecules 2022, 27, 2740. [Google Scholar] [CrossRef] [PubMed]
- Hussain, S.; Berry, S. A Review Study on Green Synthesis of Chitosan Derived Schiff Bases and Their Applications. Carbohydr. Res. 2024, 535, 109002. [Google Scholar] [CrossRef] [PubMed]
- Qin, Z.; Huang, Y.; Xiao, S.; Zhang, H.; Lu, Y.; Xu, K. Preparation and Characterization of High Mechanical Strength Chitosan/Oxidized Tannic Acid Composite Film with Schiff Base and Hydrogen Bond Crosslinking. Int. J. Mol. Sci. 2022, 23, 9284. [Google Scholar] [CrossRef] [PubMed]
- Hosney, A.; Ullah, S.; Barčauskaitė, K. A Review of the Chemical Extraction of Chitosan from Shrimp Wastes and Prediction of Factors Affecting Chitosan Yield by Using an Artificial Neural Network. Mar. Drugs 2022, 20, 675. [Google Scholar] [CrossRef]
- Escobar, D.; Ramírez, A.; Castrillón, N. Determining the Relation between the Proportion of the Amino Group and the Degree of Deacetylation of Chitosan. Rev. Cienc. 2014, 18, 73–88. [Google Scholar]
- Brugnerotto, J.; Lizardi, J.; Goycoolea, F.M.; Argüelles-Monal, W.; Desbrières, J.; Rinaudo, M. An Infrared Investigation in Relation with Chitin and Chitosan Characterization. Polymer 2001, 42, 3569–3580. [Google Scholar] [CrossRef]
- Perentena, L.; González, C.; Celis, B.; Valbuena, A.; Colina, M. Síntesis de Bases de Schiff Derivadas Del Quitosano Por Reacción Con P-Dimetilaminobenzaldehído y 4-Hidroxi-3-Metoxibenzaldehido. Rev. Iber. Polímeros 2015, 16, 1–27. [Google Scholar]
- Zając, A.; Hanuza, J.; Wandas, M.; Dymińska, L. Determination of N-Acetylation Degree in Chitosan Using Raman Spectroscopy. Spectrochim. Acta A Mol. Biomol. Spectrosc. 2015, 134, 114–120. [Google Scholar] [CrossRef]
- Ramirez, C.; Delgado, E.; Andrade, A. Determinación Del Grado de Desacetilación de Quitosana Mediante Titulación Potenciométrica, FTIR y Raman. J. CIM 2016, 4, 769–776. [Google Scholar]
- dos Santos, Z.M.; Caroni, A.L.P.F.; Pereira, M.R.; da Silva, D.R.; Fonseca, J.L.C. Determination of Deacetylation Degree of Chitosan: A Comparison between Conductometric Titration and CHN Elemental Analysis. Carbohydr. Res. 2009, 344, 2591–2595. [Google Scholar] [CrossRef]
- Guinesi, L.S.; Cavalheiro, É.T.G. Influence of Some Reactional Parameters on the Substitution Degree of Biopolymeric Schiff Bases Prepared from Chitosan and Salicylaldehyde. Carbohydr. Polym. 2006, 65, 557–561. [Google Scholar] [CrossRef]
- Barbosa, H.F.G.; Attjioui, M.; Ferreira, A.P.G.; Dockal, E.R.; El Gueddari, N.E.; Moerschbacher, B.M.; Cavalheiro, É.T.G. Synthesis, Characterization and Biological Activities of Biopolymeric Schiff Bases Prepared with Chitosan and Salicylaldehydes and Their Pd(II) and Pt(II) Complexes. Molecules 2017, 22, 1987. [Google Scholar] [CrossRef]
- Barreiro-Costa, O.; Morales-Noboa, G.; Rojas-Silva, P.; Lara-Barba, E.; Santamaría-Aguirre, J.; Bailón-Moscoso, N.; Romero-Benavides, J.C.; Herrera, A.; Cueva, C.; Ron-Garrido, L.; et al. Synthesis and Evaluation of Biological Activities of Bis(Spiropyrazolone)Cyclopropanes: A Potential Application against Leishmaniasis. Molecules 2021, 26, 4960. [Google Scholar] [CrossRef] [PubMed]
- Patria, A. Production and Characterization of Chitosan from Shrimp Shells Waste. AACL Bioflux 2013, 6, 339–344. [Google Scholar]
- Czechowska-Biskup, R.; Wach, R.; Rosiak, J.; Ulański, P. Procedure for Determination of the Molecular Weight of Chitosan by Viscometry. Prog. Chem. Appl. Chitin Deriv. 2018, 23, 45–54. [Google Scholar] [CrossRef]
- Hossain, M.S.; Iqbal, A. Production and Characterization of Chitosan from Shrimp Waste. J. Bangladesh Agril. Univ. 2014, 12, 153–160. [Google Scholar] [CrossRef]
- Kasaai, M.R.; Arul, J.; Charlet, G. Intrinsic Viscosity-Molecular Weight Relationship for Chitosan. J. Polym. Sci. B Polym. Phys. 2000, 38, 2591–2598. [Google Scholar] [CrossRef]
- Román-Doval, R.; Torres-Arellanes, S.P.; Tenorio-Barajas, A.Y.; Gómez-Sánchez, A.; Valencia-Lazcano, A.A. Chitosan: Properties and Its Application in Agriculture in Context of Molecular Weight. Polymers 2023, 15, 2867. [Google Scholar] [CrossRef]
- Dimzon, I.K.D.; Knepper, T.P. Degree of Deacetylation of Chitosan by Infrared Spectroscopy and Partial Least Squares. Int. J. Biol. Macromol. 2015, 72, 939–945. [Google Scholar] [CrossRef]
- Supernak, M.; Makurat-Kasprolewicz, B.; Kaczmarek-Szczepańska, B.; Pałubicka, A.; Sakowicz-Burkiewicz, M.; Ronowska, A.; Wekwejt, M. Chitosan-Based Membranes as Gentamicin Carriers for Biomedical Applications—Influence of Chitosan Molecular Weight. Membranes 2023, 13, 542. [Google Scholar] [CrossRef] [PubMed]
- Liu, Y.; Yuan, Y.; Duan, S.; Li, C.; Hu, B.; Liu, A.; Wu, D.; Cui, H.; Lin, L.; He, J.; et al. Preparation and Characterization of Chitosan Films with Three Kinds of Molecular Weight for Food Packaging. Int. J. Biol. Macromol. 2020, 155, 249–259. [Google Scholar] [CrossRef]
- Blanco, A.; García-Abuín, A.; Gómez-Díaz, D.; Navaza, J.M. Physicochemical Characterization of Chitosan Derivatives. CyTA-J. Food 2013, 11, 190–197. [Google Scholar] [CrossRef]
- Foster, L.J.R.; Ho, S.; Hook, J.; Basuki, M.; Marçal, H. Chitosan as a Biomaterial: Influence of Degree of Deacetylation on Its Physiochemical, Material and Biological Properties. PLoS ONE 2015, 10, e0135153. [Google Scholar] [CrossRef] [PubMed]
- de Alvarenga, E.S.; Pereira de Oliveira, C.; Roberto Bellato, C. An Approach to Understanding the Deacetylation Degree of Chitosan. Carbohydr. Polym. 2010, 80, 1155–1160. [Google Scholar] [CrossRef]
- Kasaai, M.R. Various Methods for Determination of the Degree of N-Acetylation of Chitin and Chitosan: A Review. J. Agric. Food Chem. 2009, 57, 1667–1676. [Google Scholar] [CrossRef]
- Amamou, O.; Kefil, S.; Denis, J.-P.; Boubaker, T.; Cardinal, S. Revisiting the Determination of the Degree of Deacetylation Using Potentiometric Titration: A New Equation for Modified Chitosan. Molecules 2024, 29, 2962. [Google Scholar] [CrossRef]
- Kasaai, M. A Review of Several Reported Procedures to Determine the Degree of N-Acetylation for Chitin and Chitosan Using Infrared Spectroscopy. Carbohydr. Polym. 2008, 71, 497–508. [Google Scholar] [CrossRef]
- Siriprom, W.; Chantarasunthon, K.; Teanchai, K. Physical and Thermal Properties of Chitosan. Adv. Mat. Res. 2014, 979, 315–318. [Google Scholar] [CrossRef]
- Hong, P.; Li, S.; Ou, C.; Li, C.; Yang, L.; Zhang, C. Thermogravimetric Analysis of Chitosan. J. Appl. Polym. Sci. 2007, 105, 547–551. [Google Scholar] [CrossRef]
- Kittur, F.S.; Harish Prashanth, K.V.; Udaya Sankar, K.; Tharanathan, R.N. Characterization of Chitin, Chitosan and Their Carboxymethyl Derivatives by Differential Scanning Calorimetry. Carbohydr. Polym. 2002, 49, 185–193. [Google Scholar] [CrossRef]
- Nieto, J.M.; Peniche-Covas, C.; Padro’n, G. Characterization of Chitosan by Pyrolysis-Mass Spectrometry, Thermal Analysis and Differential Scanning Calorimetry. Thermochim. Acta 1991, 176, 63–68. [Google Scholar] [CrossRef]
- Yuan, Y.; Chesnutt, B.M.; Haggard, W.O.; Bumgardner, J.D. Deacetylation of Chitosan: Material Characterization and in Vitro Evaluation via Albumin Adsorption and Pre-Osteoblastic Cell Cultures. Materials 2011, 4, 1399–1416. [Google Scholar] [CrossRef] [PubMed]
- Corazzari, I.; Nisticò, R.; Turci, F.; Faga, M.G.; Franzoso, F.; Tabasso, S.; Magnacca, G. Advanced Physico-Chemical Characterization of Chitosan by Means of TGA Coupled on-Line with FTIR and GCMS: Thermal Degradation and Water Adsorption Capacity. Polym. Degrad. Stab. 2015, 112, 1–9. [Google Scholar] [CrossRef]
- Larkin, P. Infrared and Raman Spectroscopy, 2nd ed.; Elsevier: Stamford, CT, USA, 2018; Volume 2, ISBN 9780128041628. [Google Scholar]
- Bajer, D.; Kaczmarek, H. Thermal Stability of Fluorescent Chitosan Modified with Heterocyclic Aromatic Dyes. Materials 2022, 15, 3667. [Google Scholar] [CrossRef]
- Pascual Payá, M. Investigación Sobre La Mejora de La Humectabilidad de Films Poliméricos de Polietileno de Baja Densidad (LDPE) Mediante Plasma Por Descarga Corona. Optimización de Laminados Con Espumas de Polietileno Mediante Procesos de Laminación Con Adhesivos Hot-Melt Para Aplicaciones Técnicas En El Sector de Automoción. Tesis Doctoral, Universitat Politècnica de València, Valencia, Spain, 2011. [Google Scholar]
- Ojha, N.; Pradhan, N.; Singh, S.; Barla, A.; Shrivastava, A.; Khatua, P.; Rai, V.; Bose, S. Evaluation of HDPE and LDPE Degradation by Fungus, Implemented by Statistical Optimization. Sci. Rep. 2017, 7, 39515. [Google Scholar] [CrossRef]
- Escamilla-García, M.; Delgado-Sánchez, L.F.; Ríos-Romo, R.A.; García-Almendárez, B.E.; Calderón-Domínguez, G.; Méndez-Méndez, J.V.; Amaro-Reyes, A.; Di Pierro, P.; Regalado-González, C. Effect of Transglutaminase Cross-Linking in Protein Isolates from a Mixture of Two Quinoa Varieties with Chitosan on the Physicochemical Properties of Edible Films. Coatings 2019, 9, 736. [Google Scholar] [CrossRef]
- Faisal, M.; Desvita, H.; Heriansyah, M.B.; Abubakar, Y.; Djuned, F.M.; Mansur, D.; Ramadhani, P.; Ariani, N.; Khoirunnisa; Darmawan, A.; et al. Chitosan-Liquid Smoke-Based Composite Coating for Extending the Shelf Life of Cherry Tomatoes. Case Stud. Chem. Environ. Eng. 2025, 11, 101155. [Google Scholar] [CrossRef]
- Kumar, N.; Devgan, K.; Kumar, A.; Kaur, P.; Mahajan, P. Active and Passive Modified Atmosphere Packaging. In Nonthermal Food Engineering Operations; Kumar, N., Panghal, A., Garg, M.K., Eds.; Wiley: Hoboken, NJ, USA, 2024; pp. 225–259. [Google Scholar]
- Dulta, K.; Ağçeli, G.K.; Singh, S.; Pandey, V.K.; Thakur, A.; Chauhan, P.K.; Aman, J.; Rustagi, S. Unveiling the Effects of ZnO Nanoparticle Incorporated Chitosan Coating on Postharvest Quality of Eggplant (Solanum melongena L.). Food Control 2025, 168, 110912. [Google Scholar] [CrossRef]
- Zhang, X.; Ismail, B.B.; Cheng, H.; Jin, T.Z.; Qian, M.; Arabi, S.A.; Liu, D.; Guo, M. Emerging Chitosan-Essential Oil Films and Coatings for Food Preservation—A Review of Advances and Applications. Carbohydr. Polym. 2021, 273, 118616. [Google Scholar] [CrossRef]
- Fernández Valdés, D.; Bautista Baños, S.; Fernández Valdés, D.; Ocampo Ramírez, A.; García Pereira, A.; Falcón Rodríguez, A. Películas y Recubrimientos Comestibles: Una Alternativa Favorable En La Conservación Poscosecha de Frutas y Hortalizas. Rev. Cienc. Técnicas Agropecu. 2015, 24, 52–57. [Google Scholar]




| Chitosan Mass (mg) | R | Mass of Benzaldehyde (mg) | Schiff Base |
|---|---|---|---|
| 400.1 | OH | 304.2 | 3a |
| 500.4 | COOMe | 511.4 | 3b |
| 400.2 | Br | 460.9 | 3c |
| 400.3 | CN | 326.8 | 3d |
| 400.1 | F | 309.1 | 3e |
| 400.1 | NMe2 | 371.6 | 3f |
| 400.3 | NO2 | 376.6 | 3g |
| 500.6 | OCF3 | 592.5 | 3h |
| 400.1 | OCH3 | 339.1 | 3i |
| 500.5 | SCH3 | 474.2 | 3j |
| Concentration (mg/mL) | Time (s) a | *ɳr | *ɳsp | ɳred (mL/g) |
|---|---|---|---|---|
| 0 b | 1.73 ± 0.13 | --- | --- | --- |
| 2 | 2.49 ± 0.05 | 2.609 | 1.609 | 805 |
| 4 | 3.62 ± 0.09 | 4.602 | 3.602 | 901 |
| 6 | 8.41 ± 0.12 | 12.158 | 11.158 | 1860 |
| 8 | 22.94 ± 0.35 | 33.946 | 32.946 | 4118 |
| 10 | 49.71 ± 2.65 | 74.315 | 73.315 | 7332 |
| Degree of Deacetylation (%) | |||
|---|---|---|---|
| IR a | Raman b | P c | EA d |
| 71.8 | 75.6 | 53.4 | 68.6 |
| Compound | IR (cm−1) | Raman (cm−1) | Assignment |
|---|---|---|---|
| 3a | 1645 sh (m) | 1662 (m) | ν (C=N) imine |
| 1218 (s) | 1213 (w) | ν (OH) | |
| 3b | 1719 (s) | 1716 (w) | ν (C=O) ester |
| 1646 (s) | 1638 (s) | ν (C=N) imine | |
| 1645 (s) | 1640 (m) | ν (C-O) ester | |
| 1287 (s) | 1220 (m) | ν (OH) | |
| 3c | 1645 (s) | 1644 (m) | ν (C=N) imine |
| 1071 (s) | --- | ν (C-Br) aromatic | |
| 3d | 2229 (m) | 2231 (m) | ν (CN) |
| 1646 (s) | 1644 (m) | ν (C=N) imine | |
| 3e | 1646 (s) | 1638 (m) | ν (C=N) imine |
| 1232 (s) | 1231 (m) | ν (C-F) aromatic | |
| 3f | 1659 (m) | 1638 (m) | ν (C=N) imine |
| 1232 (w) | 1247 (w) | δ (C-N-C) | |
| 3g | 1646 (s) | 1656 (m) | ν (C=N) imine |
| 1523 (s) | --- | δ (NO2) | |
| 3h | 1649 (s) | 1641 (m) | ν (C=N) imine |
| 1261 (s) | 1223 (m) | ν (CF3) | |
| 3i | 1652 (m) | 1638 (m) | ν (C=N) imine |
| 1255 (s) | 1226 (m) | δ (C-O-C) | |
| 3j | 1642 (s) | 1641 (m) | ν (C=N) imine |
| 1435 (w) | 1452 (w) | δ (C-S-C) |
| Compound | N [%] | C [%] | H [%] | S [%] |
|---|---|---|---|---|
| 1 | 6.91 | 39.27 | 7.88 | --- |
| 3a | 5.89 | 43.73 | 6.60 | --- |
| 3c | 4.61 | 41.41 | 5.42 | --- |
| 3d | 7.62 | 47.40 | 5.68 | --- |
| 3e | 4.85 | 42.54 | 6.01 | --- |
| 3f | 6.94 | 48.31 | 6.77 | --- |
| 3g | 7.37 | 43.91 | 5.33 | --- |
| 3h | 4.51 | 42.93 | 5.11 | --- |
| 3i | 5.33 | 44.64 | 6.54 | --- |
| 3j | 4.97 | 45.21 | 5.96 | 4.27 |
| Qc | 6.95 | 39.89 | 7.43 | --- |
| Leishmania mexicana a | RAW 264.7 b | |
|---|---|---|
| Acetic acid 2%. | 121.6 ± 20.4 | 95.4 ± 2.3 |
| 1 | 47.3 ± 2.8 | 92.2 ± 7.4 |
| 3a | 46.2 ± 3.2 | 91.6 ± 7.1 |
| 3b | 90.6 ± 5.1 | 82.4 ± 4.1 |
| 3c | 102.5 ± 13.7 | 87.5 ± 6.9 |
| 3d | 100.8 ± 6.3 | 72.7 ± 6.7 |
| 3e | 91.1 ± 10.3 | 86.4 ± 5.1 |
| 3f | 78.9 ± 0.4 | 84.1 ± 6.1 |
| 3g | 107.0 ± 14.0 | 76.6 ± 9.0 |
| 3h | 72.9 ± 0.7 | 81.7 ± 5.1 |
| 3i | 51.1 ± 4.8 | 83.4 ± 7.4 |
| 3j | 85.4 ± 9.9 | 88.9 ± 5.5 |
| Amphotericin B | 15.1 ± 3.6 | --- |
| Saponine c | --- | 3.1 ± 0.4 |
| Film | Roughness (nm) |
|---|---|
| 1–PVA | 1.0 |
| 3a–PVA | 1.0 |
| 3b–PVA | 2.0 |
| 3c–PVA | 2.0 |
| 3d–PVA | 1.63 |
| 3e–PVA | 1.0 |
| 3f–PVA | 2.0 |
| 3g–PVA | 2 |
| 3h–PVA | 1 |
| 3i–PVA | 1 |
| 3j–PVA | 1 |
| Qc–PVA | 1 |
| PVA | 1.24 |
| Plastic of packaging | 1.99 |
| Film | O2 (%) | CO2 (%) |
|---|---|---|
| 1–PVA | 16.7 ± 0.6 | 6.8 ± 1.9 |
| 3a–PVA | 17.7 ± 0.2 | 4.1 ± 0.8 |
| 3b–PVA | 16.4 ± 0.2 | 4.8 ± 0.6 |
| Film | R | Tensile Strength (N/mm2) | Elongation (%) | Displacement (mm) |
|---|---|---|---|---|
| (Para-Substituted Benzaldehyde) | ||||
| 1–PVA | — | 265.35 * | 64.74 * | 5.18 * |
| 3a–PVA | –OH | 892.75 ± 23.42 | 395.85 ± 36.67 | 31.67 ± 2.93 |
| 3b–PVA | –COOMe | 146.07 ± 3.43 | 395.45 ± 47.24 | 31.64 ± 3.78 |
| 3c–PVA | –Br | 66.94 ± 5.85 | 334.90 ± 101.56 | 26.79 ± 8.12 |
| 3d–PVA | –CN | 194.05 ± 14.21 | 454.58 ± 1.83 | 36.37 ± 0.15 |
| 3e–PVA | –F | 225.84 * | 441.46 * | 35.32 * |
| 3f–PVA | –NMe2 | 1053.68 ± 659.36 | 267.36 ± 157.63 | 21.39 ± 12.61 |
| 3g–PVA | –NO2 | 123.33 ± 19.87 | 555.17 ± 23.56 | 44.41 ± 1.89 |
| 3i–PVA | –OCH3 | 161.72 ± 36.24 | 490.30 ± 164.73 | 39.22 ± 13.18 |
| Qc–PVA | — | 308.70 ± 67.08 | 514.65 ± 80.57 | 41.17 ± 6.45 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Yánez-Crespo, A.A.; Alcívar-León, C.D.; Bonilla-Valladares, P.M.; Yánez-Darquea, T.G.; Heredia-Moya, J.; Juncal, L.; Cabrera, F.; Andrade-Cuvi, M.J.; Moreno-Guerrero, C.; Ulic, S.E. High Molecular Weight Chitosan from Shrimp Shells: Synthesis of Para-Substituted Schiff Bases with Selective Leishmanicidal Activity and Application in CO2/O2-Selective Films. Polymers 2026, 18, 1397. https://doi.org/10.3390/polym18111397
Yánez-Crespo AA, Alcívar-León CD, Bonilla-Valladares PM, Yánez-Darquea TG, Heredia-Moya J, Juncal L, Cabrera F, Andrade-Cuvi MJ, Moreno-Guerrero C, Ulic SE. High Molecular Weight Chitosan from Shrimp Shells: Synthesis of Para-Substituted Schiff Bases with Selective Leishmanicidal Activity and Application in CO2/O2-Selective Films. Polymers. 2026; 18(11):1397. https://doi.org/10.3390/polym18111397
Chicago/Turabian StyleYánez-Crespo, Andrés Alejandro, Christian David Alcívar-León, Pablo Mauricio Bonilla-Valladares, Trosky Germán Yánez-Darquea, Jorge Heredia-Moya, Luciana Juncal, Fabiana Cabrera, María José Andrade-Cuvi, Carlota Moreno-Guerrero, and Sonia E. Ulic. 2026. "High Molecular Weight Chitosan from Shrimp Shells: Synthesis of Para-Substituted Schiff Bases with Selective Leishmanicidal Activity and Application in CO2/O2-Selective Films" Polymers 18, no. 11: 1397. https://doi.org/10.3390/polym18111397
APA StyleYánez-Crespo, A. A., Alcívar-León, C. D., Bonilla-Valladares, P. M., Yánez-Darquea, T. G., Heredia-Moya, J., Juncal, L., Cabrera, F., Andrade-Cuvi, M. J., Moreno-Guerrero, C., & Ulic, S. E. (2026). High Molecular Weight Chitosan from Shrimp Shells: Synthesis of Para-Substituted Schiff Bases with Selective Leishmanicidal Activity and Application in CO2/O2-Selective Films. Polymers, 18(11), 1397. https://doi.org/10.3390/polym18111397

