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生物聚合物纤维中的磁性纳米粒子:制备技术与表征方法

Magnetic Nanoparticles in Biopolymer Fibers: Fabrication Techniques and Characterization Methods.

作者信息

Bianchini Silva Mariana, Costa Ulisses Oliveira, Mattoso Luiz Henrique Capparelli, Monteiro Sergio Neves, de Souza Michele Lemos, Vitorazi Letícia

机构信息

Graduate Program in Metallurgical Engineering (PPGEM), EEIMVR, Fluminense Federal University, Avenida dos Trabalhadores, 420, Volta Redonda 27225-125, RJ, Brazil.

Graduate Program in Chemistry, Institute of Chemistry (IQ), University of Campinas, Rua Josué de Castro, s/n, Cidade Universitária, Campinas 13083-970, SP, Brazil.

出版信息

Polymers (Basel). 2024 Oct 3;16(19):2805. doi: 10.3390/polym16192805.

Abstract

Hybrid nanocomposites combining biopolymer fibers incorporated with nanoparticles (NPs) have received increasing attention due to their remarkable characteristics. Inorganic NPs are typically chosen for their properties, such as magnetism and thermal or electrical conductivity, for example. Meanwhile, the biopolymer fiber component is a backbone, and could act as a support structure for the NPs. This shift towards biopolymers over traditional synthetic polymers is motivated by their sustainability, compatibility with biological systems, non-toxic nature, and natural decomposition. This study employed the solution blow spinning (SBS) method to obtain a nanocomposite comprising poly(vinyl pyrrolidone), PVA, and gelatin biodegradable polymer fibers incorporated with magnetic iron oxide nanoparticles coated with poly(acrylic acid), PAA, coded as γ-FeO-NPs-PAA. The fiber production process entailed a preliminary investigation to determine suitable solvents, polymer concentrations, and spinning parameters. γ-FeO-NPs were synthesized via chemical co-precipitation as maghemite and coated with PAA through the precipitation-redispersion protocol in order to prepare γ-FeO-NPs-PAA. Biopolymeric fibers containing coated NPs with sub-micrometer diameters were obtained, with NP concentrations ranging from 1.0 to 1.7% wt. The synthesized NPs underwent characterization via dynamic light scattering, zeta potential analysis, and infrared spectroscopy, while the biopolymer fibers were characterized through scanning electron microscopy, infrared spectroscopy, and thermogravimetric analysis. Overall, this study demonstrates the successful implementation of SBS for producing biopolymeric fibers incorporating iron oxide NPs, where the amalgamation of materials demonstrated superior thermal behavior to the plain polymers. The thorough characterization of the NPs and fibers provided valuable insights into their properties, paving the way for their potential applications in various fields such as biomedical engineering, environmental remediation, and functional materials.

摘要

结合了掺入纳米颗粒(NPs)的生物聚合物纤维的杂化纳米复合材料因其卓越的特性而受到越来越多的关注。例如,无机NPs通常因其磁性、热导率或电导率等特性而被选用。同时,生物聚合物纤维成分是一种骨架,可作为NPs的支撑结构。这种从传统合成聚合物向生物聚合物的转变是由其可持续性、与生物系统的相容性、无毒性质和自然分解性所推动的。本研究采用溶液吹纺(SBS)方法,获得了一种纳米复合材料,该复合材料由聚(乙烯基吡咯烷酮)、PVA和明胶生物可降解聚合物纤维组成,并掺入了涂覆有聚(丙烯酸)(PAA)的磁性氧化铁纳米颗粒,编码为γ-FeO-NPs-PAA。纤维生产过程需要进行初步研究,以确定合适的溶剂、聚合物浓度和纺丝参数。γ-FeO-NPs通过化学共沉淀法合成磁赤铁矿,并通过沉淀-再分散方案用PAA进行包覆,以制备γ-FeO-NPs-PAA。获得了含有直径为亚微米级的包覆NPs的生物聚合物纤维,NP浓度范围为1.0至1.7%(重量)。合成的NPs通过动态光散射、zeta电位分析和红外光谱进行表征,而生物聚合物纤维则通过扫描电子显微镜、红外光谱和热重分析进行表征。总体而言,本研究证明了SBS在生产掺入氧化铁NPs的生物聚合物纤维方面的成功实施,其中材料的融合表现出比纯聚合物更优异的热性能。对NPs和纤维的全面表征为它们的性质提供了有价值的见解,为它们在生物医学工程、环境修复和功能材料等各个领域的潜在应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02cf/11478581/ce39c24bb893/polymers-16-02805-g001.jpg

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