The Effects of the Deacetylation of Chitin Nanowhiskers on the Performance of PCL/PLA Bio-Nanocomposites

. 2023 Jul 17 ; 15 (14) : . [epub] 20230717

Status PubMed-not-MEDLINE Jazyk angličtina Země Švýcarsko Médium electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid37514460

Grantová podpora
LUAUS23004 Ministry of Education Youth and Sports

The multiple roles of organic nanofillers in biodegradable nanocomposites (NC) with a blend-based matrix is not yet fully understood. This work highlights combination of reinforcing and structure-directing effects of chitin nanowhiskers (CNW) with different degrees of deacetylation (DA), i.e., content of primary or secondary amines on their surface, in the nanocomposite with the PCL/PLA 1:1 matrix. Of importance is the fact that aminolysis with CNW leading to chain scission of both polyesters, especially of PLA, is practically independent of DA. DA also does not influence thermal stability. At the same time, the more marked chain scission/CNW grafting for PLA in comparison to PCL, causing changes in rheological parameters of components and related structural alterations, has crucial effects on mechanical properties in systems with a bicontinuous structure. Favourable combinations of multiple effects of CNW leads to enhanced mechanical performance at low 1% content only, whereas negative effects of structural changes, particularly of changed continuity, may eliminate the reinforcing effects of CNW at higher contents. The explanation of both synergistic and antagonistic effects of structures formed is based on the correspondence of experimental results with respective basic model calculations.

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Gelfer M.Y., Song H.H., Liu L., Hsiao B.S., Chu B., Rafailovich M., Si M., Zaitsev V. Effects of organoclays on morphology and thermal and rheological properties of polystyrene and poly(methyl methacrylate) blends. J. Polym. Sci. Part B–Polym. Phys. Part B. 2003;41:44–54. doi: 10.1002/polb.10360. DOI

Pawar S.P., Suryasarathi B. Peculiar morphological transitions induced by nanoparticles in polymeric blends: Retarded relaxation or altered interfacial tension. Phys. Chem. Chem. Phys. 2015;17:14470–14478. doi: 10.1039/C5CP01644D. PubMed DOI

Chow W.S., Ishak Z.A.M. Polyamide Blend-Based Nanocomposites: A Review. Express Polym. Lett. 2015;9:211–232. doi: 10.3144/expresspolymlett.2015.22. DOI

Motloung M.P., Ojijo V., Bandyopadhyay J., Ray S.S. Morphological characteristics and thermal, rheological, and mechanical properties of cellulose nanocrystals-containing biodegradable poly(lactic acid)/poly(ε-caprolactone) blend composites. J. Appl. Polym. Sci. 2019;137:48665. doi: 10.1002/app.48665. DOI

Chomachayi M.D., Jalali-arani A., Martínez Urreaga J. The effect of silk fibroin nanoparticles on the morphology, rheology, dynamic mechanical properties, and toughness of poly(lactic acid)/poly(ε-caprolactone) nanocomposite. J. Appl. Polym. Sci. 2020;137:49232. doi: 10.1002/app.49232. DOI

Sessini V., Navarro-Baena I., Arrieta M.P., Dominici F., López D., Torre L., Kenny J.M., Dubois P., Raquez J.-M., Peponi L. Effect of the addition of polyester-grafted-cellulose nanocrystals on the shape memory properties of biodegradable PLA/PCL nanocomposites. Polym. Degrad. Stabil. 2018;152:126–138. doi: 10.1016/j.polymdegradstab.2018.04.012. DOI

Goffin A.-L., Habibi Y., Raquez J.-M., Dubois P. Polyester-grafted cellulose nanowhiskers: A new approach for tuning the microstructure of immiscible polyester blends. ACS App. Mater. Interfaces. 2012;4:3364–3371. doi: 10.1021/am3008196. PubMed DOI

Jadhav H., Jadhav A., Takkalkar P., Hossain N., Nizammudin S., Zahoor M., Jamal M., Mubarak M.N., Griffin G., Kao N. Potential of polylactide based nanocomposites-nanopolysaccharide filler for reinforcement purpose: A comprehensive review. J. Polym. Res. 2020;27:330. doi: 10.1007/s10965-020-02287-y. DOI

Tran T.H., Nguyen H.L., Hwang D.S., Lee J.Y., Cha H.G., Koo J.M., Hwang S.Y., Park J., Oh D.X. Five different chitin nanomaterials from identical source with different advantageous functions and performances. Carbohydr. Polym. 2019;205:392–400. doi: 10.1016/j.carbpol.2018.10.089. PubMed DOI

Pereira A.G.B., Muniz E.C., Hsieh Y.L. Chitosan-sheath and chitin-core nanowhiskers. Carbohydr. Polym. 2014;107:158–166. doi: 10.1016/j.carbpol.2014.02.046. PubMed DOI

Kelnar I., Kovářová J., Tishchenko G., Kaprálková L., Pavlova E., Carezzi F., Morganti P. Chitosan/Chitin nanowhiskers composites: Effect of plasticisers on the mechanical behavior. J. Polym. Res. 2015;22:5. doi: 10.1007/s10965-014-0648-4. DOI

Bai L., Liu L., Esquivel M., Tardy B.L., Huan S., Niu X., Liu S., Yang G., Fan Y., Rojas O.J. Nanochitin: Chemistry, Structure, Assembly, and Applications. Chem. Rev. 2022;122:11604–11674. doi: 10.1021/acs.chemrev.2c00125. PubMed DOI PMC

Morin A., Dufresne A. Nanocomposites of chitin whiskers from Riftia tubes and poly(caprolactone) Macromolecules. 2002;35:2190–2199. doi: 10.1021/ma011493a. DOI

Espadín A., De Dios L.T., Ruvalcaba E., Valadez-García J., Velasquillo C., Bustos-Jaimes I., Vázquez-Torres H., Gimeno M., Shirai K. Production and characterization of a nanocomposite of highly crystalline nanowhiskers from biologically extracted chitin in enzymatic poly(ε-caprolactone) Carbohydr. Polym. 2018;181:684–692. doi: 10.1016/j.carbpol.2017.11.094. PubMed DOI

Wang B., Li J., Zhang J., Li H., Chen P., Gu Q., Wang Z. Thermo-mechanical properties of the composite made of poly (3-hydroxybutyrate-co-3-hydroxyvalerate) and acetylated chitin nanocrystals. Carbohydr. Polym. 2013;95:100–106. doi: 10.1016/j.carbpol.2013.02.055. PubMed DOI

Wang J., Wang Z., Li J., Wang B., Liu J., Chen P., Miao M., Gu Q. Chitin nanocrystals grafted with poly(3-hydroxybutyrate-co-3-hydroxyvalerate) and their effects on thermal behavior of PHBV. Carbohydr. Polym. 2012;87:784–789. doi: 10.1016/j.carbpol.2011.08.066. PubMed DOI

Oksman K., Mathew A.P., Bondeson D., Kvien I. Manufacturing process of cellulose whiskers/polylactic acid nanocomposites. Compos. Sci. Technol. 2006;66:2776–2784. doi: 10.1016/j.compscitech.2006.03.002. DOI

Coltelli M.B., Cinelli P., Gigante V., Aliotta L., Morganti P., Panariello L., Lazzeri A. Chitin Nanofibrils in Poly(Lactic Acid) (PLA) Nanocomposites: Dispersion and Thermo-Mechanical Properties. Int. J. Mol. Sci. 2019;20:504. doi: 10.3390/ijms20030504. PubMed DOI PMC

Patel M., Schwendemann D., Spigno G., Geng S., Berglund L., Oksman K. Functional Nanocomposite Films of Poly(Lactic Acid) with Well-Dispersed Chitin Nanocrystals Achieved Using a Dispersing Agent and Liquid-Assisted Extrusion Process. Molecules. 2021;26:4557. doi: 10.3390/molecules26154557. PubMed DOI PMC

Rizvi R., Cochrane B., Naguib H., Lee P.C. Fabrication and characterization of melt-blended polylactide chitin composites and their foams. J. Cell. Plast. 2011;47:283–300. doi: 10.1177/0021955X11402549. DOI

Li C., Liu H., Luo B., Wen W., He L., Liu M., Zhou C. Nanocomposites of poly(l-lactide) and surface-modified chitin whiskers with improved mechanical properties and cytocompatibility. Eur. Polym. J. 2016;81:266–283. doi: 10.1016/j.eurpolymj.2016.06.015. DOI

Guan Q., Naguib H.E. Fabrication and Characterization of PLA/PHBV-Chitin Nanocomposites and Their Foams. J. Polym. Environ. 2014;22:119–130. doi: 10.1007/s10924-013-0625-8. DOI

Kelnar I., Rotrekl J., Kaprálková L., Hromádková J. Effect of poly(oxyalkylene)amines on structure and properties of epoxide nanocomposites. J. Appl. Polym. Sci. 2012;125:2755–2763. doi: 10.1002/app.36604. DOI

Kelnar I., Kratochvíl J., Fortelný I., Kaprálková L., Zhigunov A., Kotrisová M., Khunová V., Nevoralová M. Influence of clay-nanofiller geometry on the structure and properties of poly(lactic acid)/thermoplastic polyurethane nanocomposites. RSC Adv. 2019;6:30755–30762. doi: 10.1039/C6RA03239G. DOI

Taguet A., Cassagnau P., Lopez-Cuesta J.-M. Structuration, Selective Dispersion and Compatibilizing Effect of (nano)fillers in Polymer Blends. Prog. Polym. Sci. 2014;39:1526–1563. doi: 10.1016/j.progpolymsci.2014.04.002. DOI

Rotrekl J., Matějka L., Kaprálková L., Zhigunov A., Hromádková J., Kelnar I. Epoxy/PCL nanocomposites: Effect of layered silicate on structure and behavior. Express Polym. Lett. 2012;6:975–986. doi: 10.3144/expresspolymlett.2012.103. DOI

Li T.T., Zhang H., Huang S.Y., Pei X., Lin Q., Tian S., Ma Z., Lin J.H. Preparation and property evaluations of PCL/PLA composite films. J. Polym. Res. 2021;28:156. doi: 10.1007/s10965-021-02439-8. DOI

Botlhoko O.J., Ramontja J., Ray S.S. A new insight into morphological, thermal, and mechanical properties of melt-processed polylactide/poly (ε-caprolactone) blends. Polym. Degrad. Stabil. 2018;154:84–95. doi: 10.1016/j.polymdegradstab.2018.05.025. DOI

Urquijo J., Guerrica-Echevarría G., Eguiazábal J.I. Melt processed PLA/PCL blends: Effect of processing method on phase structure, morphology, and mechanical properties. J. Appl. Polym. Sci. 2015;132:42641. doi: 10.1002/app.42641. DOI

Yu Z., Yin J., Yan S., Xie Y., Ma J., Chen X. Biodegradable poly(l-lactide)/poly(ɛ-caprolactone)-modified montmorillonite nanocomposites: Preparation and characterization. Polymer. 2007;48:6439–6447. doi: 10.1016/j.polymer.2007.07.024. DOI

Decol M., Pachekoski W.M., Becker D. Compatibilization and ultraviolet blocking of PLA/PCL blends via interfacial localization of titanium dioxide nanoparticles. J. Appl. Polym. Sci. 2017;135:45813. doi: 10.1002/app.45813. DOI

Kelnar I., Kratochvíl J., Kaprálková L., Zhigunov A., Nevoralová M. Graphite Nanoplatelets-Modified PLA/PCL: Effect of Blend Ratio and Nanofiller Localization on Structure and Properties. J. Mech. Behav. Biomed. Mater. 2017;71:271–278. doi: 10.1016/j.jmbbm.2017.03.028. PubMed DOI

Wang B., Ye X., Wang B., Li X., Xiao S., Liu H. Reactive graphene as highly efficient compatibilizer for cocontinuous poly(lactic acid)/poly(ε-caprolactone) blends toward robust biodegradable nanocomposites. Compos. Sci. Technol. 2022;221:109326. doi: 10.1016/j.compscitech.2022.109326. DOI

Kelnar I., Kratochvíl J., Fortelný I., Kaprálková L., Zhigunov A., Nevoralová M. Effect of Graphite Nanoplatelets on Melt Drawing and Properties of PCL/PLA Microfibrillar Composites. Polym. Compos. 2018;39:3147–3156. doi: 10.1002/pc.24322. DOI

Kelnar I., Kaprálková L., Krejčíková S., Dybal J., Vyroubalová M., Abdel-Mohsen A.M. Effect of polydopamine-coating of cellulose nanocrystals on performance of PCL/PLA bio-nanocomposites. Materials. 2023;16:1087. doi: 10.3390/ma16031087. PubMed DOI PMC

Jeznach O., Kolbuk D., Sajkiewicz P. Aminolysis of Various Aliphatic Polyesters in a Form of Nanofibers and Films. Polymers. 2019;11:1669. doi: 10.3390/polym11101669. PubMed DOI PMC

Abdel-Rahman R.M., Abdel-Mohsen A.M., Hrdina R., Fouda M.M.G., Pinto T. Chitin and chitosan from Brazilian Atlantic Coast: Isolation, characterization, and antibacterial activity. Int. J. Biol. Macromol. 2015;80:107–120. doi: 10.1016/j.ijbiomac.2015.06.027. PubMed DOI

Grimme S., Antony J., Ehrlich S., Krieg H. A Consistent and Accurate Ab Initio Parametrization of Density Functional Dispersion Correction (DFT-D) for the 94 Elements H-Pu. J. Chem. Phys. 2010;132:154104. doi: 10.1063/1.3382344. PubMed DOI

Frisch M.J., Trucks G.W., Schlegel H.B., Scuseria G.E., Robb M.A., Cheeseman J.R., Scalmani G., Barone V., Petersson G.A., Nakatsuji H., et al. Gaussian 16, Revision A.03. Gaussian Inc.; Wallingford, CT, USA: 2016.

Boys S.F., Bernardi F. The Calculation of Small Molecular Interactions by the Differences of Separate Total Energies. Some Procedures with Reduced Errors. Mol. Phys. 1970;19:553–566. doi: 10.1080/00268977000101561. DOI

Ostafińska A., Fortelny I., Nevoralova M., Hodan J., Kredatusova J., Slouf M. Synergistic effects in mechanical properties of PLA/PCL blends with optimized composition, processing and morphology. RSC Adv. 2015;5:98971–98982. doi: 10.1039/C5RA21178F. DOI

Plastics—Determination of Tensile Properties—Part 2: Test Conditions for Moulding and Extrusion Plastics. International Organization for Standardization; Geneva, Switzerland: 2012.

Krishnan K., Chapman B., Bates F.S., Lodge T.P., Almdal K., Burghardt W.R. Effects of shear flow on a polymeric bicontinuous microemulsion: Equilibrium and steady state behavior. J. Rheol. 2002;46:529–554. doi: 10.1122/1.1446883. DOI

Kelnar I., Bal Ü., Zhigunov A., Kaprálková L., Fortelný I., Krejčíková S., Kredatusová J. Complex effect of graphite nanoplatelets on performance of HDPE/PA66 microfibrillar composites. Compos. B Eng. 2018;144:220–228. doi: 10.1016/j.compositesb.2018.03.006. DOI

Nofar M., Salehiyan R., Ray S.S. Influence of nanoparticles and their selective localization on the structure and properties of polylactide-based blend nanocomposites. Compos. B Eng. 2021;215:108845. doi: 10.1016/j.compositesb.2021.108845. DOI

Sumita M., Sakata K., Asai S., Miyasaka K., Nakagawa H. Dispersion of fillers and the electrical conductivity of polymer blends filled with carbon black. Polym. Bull. 1991;25:265–271. doi: 10.1007/BF00310802. DOI

Kelnar I., Kratochvíl J., Kaprálková L., Padovec Z., Růžička M., Zhigunov A., Nevoralová M. Antagonistic effects on mechanical properties of polymer composites with dual reinforcement: Explanation by FEA model of soft interface. J. Appl. Polym. Sci. 2017;134:44712. doi: 10.1002/app.44712. DOI

Davies W.E.A. The theory of elastic composite materials. J. Phys. D–Appl. Phys. 1971;4:1325. doi: 10.1088/0022-3727/4/9/313. DOI

Kerner E.H. The elastic and thermo-elastic properties of composite media. Proc. Phys. Soc. B. 1956;69:808–813. doi: 10.1088/0370-1301/69/8/305. DOI

Halpin J.C., Kardos J.L. The Halpin-Tsai equations: A review. Polym. Eng. Sci. 1976;16:344.

Bucknall C.B. Deformation mechanisms in rubber-toughened polymers. In: Paul D.R., Bucknall C.B., editors. Polymer Blends. John Wiley & Sons; New York, NY, USA: 2000. pp. 83–118.

Moll J., Kumar S.K. Glass Transitions in Highly Attractive Highly Filled Polymer Nanocomposites. Macromolecules. 2012;45:1131–1135. doi: 10.1021/ma202218x. DOI

Ferri J.M., Fenollar O., Jorda-Vilaplana A., García-Sanoguera D., Balart R. Effect of miscibility on mechanical and thermal properties of poly (lactic acid)/polycaprolactone blends. Polym. Int. 2016;65:453–463. doi: 10.1002/pi.5079. DOI

Eklind H., Maurer F.H.J. Micromechanical transitions in compatibilized polymer blends. Polymer. 1996;37:2641–2651. doi: 10.1016/0032-3861(96)87623-3. DOI

Li J., Wu D. Nucleation roles of cellulose nanocrystals and chitin nanocrystals in poly(ε-caprolactone) nanocomposites. Int. J. Biol. Macromol. 2022;205:587–594. doi: 10.1016/j.ijbiomac.2022.02.123. PubMed DOI

Passornraprasit N., Tachaboonyakiat W. Preparation of Chitin Whisker and Effect to Crystallization of Polylactide. Key Eng. Mater. 2018;773:82–87. doi: 10.4028/www.scientific.net/KEM.773.82. DOI

Singh S., Patel M., Schwendemann D., Zaccone M., Geng S., Maspoch M.L., Oksman K. Effect of Chitin Nanocrystals on Crystallization and Properties of Poly(lactic acid)-Based Nanocomposites. Polymers. 2020;12:726. doi: 10.3390/polym12030726. PubMed DOI PMC

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