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基于壳聚糖的可生物降解聚合物共混物的合成与表征

Synthesis and Characterization of Biodegradable Polymer Blends Based on Chitosan.

作者信息

Bekbayeva Lyazzat, Mun Grigoriy A, Yermukhambetova Bayana B, Negim El-Sayed, Irmukhametova Galiya, Al Azzam Khaldun M, Nechipurenko Sergey V, Efremov Sergey A, Yermaganbetov Mubarak, Samy Moshera

机构信息

National Nanotechnology Open Laboratory, Al-Farabi Kazakh National University, Al-Farabi Av., Almaty 050040, Kazakhstan.

National Engineering Academy of the Republic of Kazakhstan, Bogenbai Batyr Str. 80, Almaty 050010, Kazakhstan.

出版信息

Polymers (Basel). 2025 Jul 2;17(13):1853. doi: 10.3390/polym17131853.

Abstract

Despite its broad application due to its affordability, biodegradability, and natural antimicrobial and antioxidant activities, chitosan (CS) still exhibits limitations in mechanical strength and barrier effectiveness. Owing to its unique chemical characteristics, itaconic acid (IT) presents potential as a compatibilizing agent in polymeric blend formulations. Biodegradable polymers composed of chitosan (CS), itaconic acid (IT), and starch (S) were synthesized using two polymerization methods. The first method involved grafting IT onto CS at varying ratios of IT (4%, 6%, and 8% wt.), using 1% / acetic acid/water as the solvent and potassium persulfate as the initiator. In the second approach, starch (S) was blended with the copolymer P(CS-g-IT) at concentrations of 1%, 3%, and 5%, utilizing water as the solvent and glacial acetic acid as a catalyst. The resulting biodegradable films underwent characterization through FTIR, TGA, SEM, and mechanical property analysis. To further explore the effects of combining IT, starch, and carbon black, the blends, referred to as P[(CS-g-IT)-b-S], were also loaded with carbon black. This allowed for the evaluation of the materials' physicomechanical properties, such as viscosity, tensile strength, elongation, and contact angle. The findings demonstrated that the presence of IT, starch, and carbon black collectively improved the films' mechanical performance, physical traits, and biodegradability. Among the samples, the blended copolymer with 1% starch exhibited the highest mechanical properties, followed by the grafted copolymer with 8% IT and the blended copolymer mixed with carbon black at 7%. In contrast, the blended copolymer with 5% starch showed the highest hydrophilicity and the shortest degradation time compared to the grafted copolymer with 8% IT and the blended copolymer mixed with 7% carbon black.

摘要

尽管壳聚糖(CS)因其价格低廉、可生物降解以及具有天然抗菌和抗氧化活性而得到广泛应用,但它在机械强度和阻隔效果方面仍存在局限性。由于衣康酸(IT)具有独特的化学特性,它在聚合物共混物配方中作为增容剂具有潜力。采用两种聚合方法合成了由壳聚糖(CS)、衣康酸(IT)和淀粉(S)组成的可生物降解聚合物。第一种方法是使用1%/乙酸/水作为溶剂,过硫酸钾作为引发剂,将不同比例(4%、6%和8%重量)的IT接枝到CS上。在第二种方法中,以水为溶剂,冰醋酸为催化剂,将淀粉(S)与共聚物P(CS-g-IT)以1%、3%和5%的浓度进行共混。通过傅里叶变换红外光谱(FTIR)、热重分析(TGA)以及扫描电子显微镜(SEM)和机械性能分析对所得的可生物降解薄膜进行表征。为了进一步探究IT、淀粉和炭黑组合的效果,还向称为P[(CS-g-IT)-b-S]的共混物中添加了炭黑。这使得能够评估材料的物理机械性能,如粘度、拉伸强度、伸长率和接触角。研究结果表明,IT、淀粉和炭黑的共同存在总体上改善了薄膜的机械性能、物理特性和生物降解性。在这些样品中,含1%淀粉的共混共聚物表现出最高的机械性能,其次是含8% IT的接枝共聚物和含7%炭黑的共混共聚物。相比之下,含5%淀粉的共混共聚物与含8% IT的接枝共聚物和含7%炭黑的共混共聚物相比,表现出最高的亲水性和最短的降解时间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6aa/12251853/b9c9ef7962a4/polymers-17-01853-g001.jpg

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