Startseite Swelling behavior and mechanical properties of Chitosan-Poly(N-vinyl-pyrrolidone) hydrogels
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Swelling behavior and mechanical properties of Chitosan-Poly(N-vinyl-pyrrolidone) hydrogels

  • Emil Budianto EMAIL logo und Annissa Amalia
Veröffentlicht/Copyright: 1. Juli 2020
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Abstract

In this research, three modified chitosan-based hydrogels are synthesized, i.e., a crosslinked chitosan hydrogel and semi- and fully-interpenetrating polymer network (IPN) chitosan hydrogels fabricated using poly(N-vinyl-pyrrolidone). A non-modified chitosan hydrogel was also synthesized as a control. These samples were compared regarding their swelling behavior and mechanical properties. The hydrogels were characterized by Fourier Transform Infrared (FTIR) analysis and microscopy observations. The effect of crosslinking on the swelling capacity and on the swelling kinetics were evaluated in distilled water, simulated gastric fluid (SGF), and simulated intestinal fluid (SIF) at 37 °C, and the data were interpreted using various kinetic models. Finally, the mechanical properties were evaluated based on the tensile strength using a universal tensile testing machine. The results revealed that the swelling process conformed to the Schott model (pseudo-second-order kinetics), with Fickian diffusion as the diffusion mechanism type. The hydrogels all showed similar trends in their swelling kinetics. However, the full-IPN hydrogel exhibited the lowest equilibrium swelling capacity and the highest swelling rate. The mechanical test results indicate that the crosslinking model affects the resulting tensile strength.


Corresponding author: Emil Budianto, Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Indonesia, Gedung G FMIPA UI, Jl. Prof. Dr. Sudjono D. Pusponegoro, Kampus UI Depok, Depok, West Java, 16424, Indonesia, E-mail:

Funding source: Universitas Indonesia

Award Identifier / Grant number: NKB-0026/UN2.R3.1/HKP.05.00/2019

Acknowledgments

We would like to thank the Department of Chemistry and the Biomedical Engineering Laboratory of Universitas Indonesia for their support and for the access to their instrumental facilities.

  1. Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: This work was supported by the PIT (Publikasi Internasional Terindeks) 9 2019 of Universitas Indonesia [grant number NKB-0026/UN2.R3.1/HKP.05.00/2019].

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

1. Devi, A., Nautiyal, U., Kaur, S., Komal, K. Hydrogels: a smart drug delivery device. Asian Pac. J. Health Sci. 2018, 1, 92–105; https://doi.org/10.21276/apjhs.2014.1.1s.19.Suche in Google Scholar

2. Hamidi, M., Azadi, A., Rafiei, P. Hydrogel nanoparticles in drug delivery. Adv. Drug Deliv. Rev. 2008, 60, 1638–1649; https://doi.org/10.1016/j.addr.2008.08.002.Suche in Google Scholar

3. Nnamani, P. O., Kenechukwu, F. C., Anugwolu, C. L., Obumneme, A. C., Attama, A. A. Characterization and controlled release of gentamicin from novel hydrogels based on Poloxamer 407 and polyacrylic acids. Afr. J. Pharm. Pharmacol. 2013, 7, 2540–2552; https://doi.org/10.5897/AJPP2013.3803.Suche in Google Scholar

4. Aminabhavi, T. M., Nadagouda, M. N., More, U. A., Joshi, S. D., Kulkarni, V. H., Noolvi, M. N., Kulkarni, P. V. Controlled release of therapeutics using interpenetrating polymeric networks. Expet Opin. Drug Deliv. 2014, 12, 669–688; https://doi.org/10.1517/17425247.2014.974871.Suche in Google Scholar

5. Bhardwaj, V., Harit, G., Kumar, S. Interpenetrating polymer network (IPN): novel approach in drug delivery. Int. J. Drug Dev. Res. 2012, 4, 41–54.Suche in Google Scholar

6. Vunain, E., Mishra, A. K., Mamba, B. B. In Chitosan Based Biomaterials; Jennings, J. A., Bumgardner, J. D., Eds. Woodhead Publishing: Cambridge, 2017; p. 3.10.1016/B978-0-08-100230-8.00001-7Suche in Google Scholar

7. Liu, X., Xu, Y., Wu, Z., Chen, H. Poly(N-vinylpyrrolidone)-modified surfaces for biomedical applications. Macromol. Biosci. 2013, 13, 147–154; https://doi.org/10.1002/mabi.201200269.Suche in Google Scholar

8. Vaghani, S. S., Patel, M. M. pH-sensitive hydrogels based on semi-interpenetrating network (semi-IPN) of chitosan and polyvinyl pyrrolidone for clarithromycin release. Drug Dev. Ind. Pharm. 2011, 37, 1160–1169; https://doi.org/10.3109/03639045.2011.563422.Suche in Google Scholar

9. Risbud, M. V., Hardikar, A. A., Bhat, S. V., Bhonde, R. R. pH-sensitive freeze-dried chitosan–polyvinyl pyrrolidone hydrogels as controlled release system for antibiotic delivery. J. Contr. Release 2000, 68, 23–30; https://doi.org/10.1016/S0168-3659(00)00208-X.Suche in Google Scholar

10. Rositaningsih, N., Budianto, E. Characteristic of Starch-Poly(N-Vinyl-Pyrrolidone) for an encapsulation material in floating drug delivery system. IOP Conf. Ser. Mater. Sci. Eng. 2017, 191, 012011; https://doi.org/10.1088/1757-899X/191/1/012011.Suche in Google Scholar

11. Wivanius, N., Budianto, E. Sintesis dan karakterisasi hidrogel superabsorben kitosan Poli(N-Vinilkaprolaktam) (Pnvcl) dengan metode full IPN (Interpenetrating Polymer Network). Pharmaceut. Sci. Res. 2015, 2, 152–168; https://doi.org/10.7454/psr.v2i3.3483.Suche in Google Scholar

12. Gharekhani, H., Olad, A., Mirmohseni, A., Bybordi, A. Superabsorbent hydrogel made of NaAlg-g-poly(AA-co-AAm) and rice husk ash: synthesis, characterization, and swelling kinetic studies. Carbohydr. Polym. 2017, 168, 1–13; https://doi.org/10.1016/j.carbpol.2017.03.047.Suche in Google Scholar

13. Dixit, A., Bag, D. S., Kalra, S. J. S. Synthesis of strong and stretchable double network (DN) hydrogels of PVA-borax and P(AM-co-HEMA) and study of their swelling kinetics and mechanical properties. Polymer 2017, 119, 263–273; https://doi.org/10.1016/j.polymer.2017.05.002.Suche in Google Scholar

14. Wang, T., Turhan, M., Gunasekaran, S. Selected properties of pH-sensitive, biodegradable chitosan–poly(vinyl alcohol) hydrogel. Polym. Int. 2004, 53, 911–918; https://doi.org/10.1002/pi.1461.Suche in Google Scholar

15. Yi, H., Wu, L. Q., Bentley, W. E., Ghodssi, R., Rubloff, G. W., Culver, J. N., Payne, G. F. Biofabrication with chitosan. Biomacromolecules 2005, 6, 2881–2894; https://doi.org/10.1021/bm050410l.Suche in Google Scholar

16. Schott, H. Swelling kinetics of polymers. J. Macromol. Sci. Part B 1992, 31, 1–9; https://doi.org/10.1080/00222349208215453.Suche in Google Scholar

17. Costa-Júnior, E. S., Barbosa-Stancioli, E. F., Mansur, A. A. P., Vasconcelos, W. L., Mansur, H. S. Preparation and characterization of chitosan/poly(vinyl alcohol) chemically crosslinked blends for biomedical applications. Carbohydr. Polym. 2009, 76, 472–481; https://doi.org/10.1016/j.carbpol.2008.11.015.Suche in Google Scholar

18. Yeng, C. M., Husseinsyah, S., Ting, S. S. Effect of cross-linking agent on tensile properties of chitosan/corn cob biocomposite films. Polym. Plast. Technol. Eng. 2015, 54, 270–275; https://doi.org/10.1080/03602559.2014.977090.Suche in Google Scholar

19. Bumgardner, J. D., Murali, V. P., Su, H., Jenkins, O. D., Velasquez-Pulgarin, D., Jennings, J. A., Sivashanmugam, A., Jayakumar, R. In Chitosan Based Biomaterials; Jennings, J. A, and Bumgardner, J. D, Eds. Woodhead Publishing: Cambridge, 2017; p. 81.10.1016/B978-0-08-100230-8.00004-2Suche in Google Scholar

20. Rizwan, M., Yahya, R., Hassan, A., Yar, M., Azzahari, A. D., Selvanathan, V., Abouloula, C. N. pH sensitive hydrogels in drug delivery: brief history, properties, swelling, and release mechanism, material selection and applications. Polymers 2017, 9, 1–37; https://doi.org/10.3390/polym9040137.Suche in Google Scholar

21. Martínez-Vázquez, N., Antonio-Cruz, R. C., Alvarez-Castillo, A., Mendoza-Martinez, A. M., Morales-Cepeda, A. Swelling kinetic of hydrogels from methyl cellulose and poly(acrylamide). Rev. Mexic. Ingen. Quím. 2007, 6, 337–345. http://www.scielo.org.mx/pdf/rmiq/v6n3/v6n3a14.pdf.Suche in Google Scholar

Received: 2019-06-08
Accepted: 2020-04-16
Published Online: 2020-07-01
Published in Print: 2020-08-27

© 2020 Walter de Gruyter GmbH, Berlin/Boston

Heruntergeladen am 3.12.2025 von https://www.degruyterbrill.com/document/doi/10.1515/polyeng-2019-0169/pdf
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