Department of Applied Chemistry, Government College University, Faisalabad 38030, Pakistan.
Department of Applied Chemistry, Government College University, Faisalabad 38030, Pakistan.
Int J Biol Macromol. 2020 Dec 15;165(Pt B):1889-1899. doi: 10.1016/j.ijbiomac.2020.10.069. Epub 2020 Oct 18.
Bionanocomposites is an emerging class of biohybrid materials, have a significant impact in environmental and biomedical fields owing to their high performance, lightweight, unique, and ecofriendly properties. A major challenge in the multiphase bionanocomposites system is to subtle control over the performance by managing the individual properties of reacting components. Herein, we presented the preliminary investigation on bionanocomposite system based on graphene nanoplatelets (GNPs) and hydroxyethyl cellulose graft poly(lactic acid) copolymer-polyurethane (HLAC-PU) with the aim to understand the structure property correlation for proposed applications in electronics and medical areas. The HLAC was fabricated by graft copolymerization of hydroxyethyl cellulose (HEC) and lactic acid (LA) with dibutyltin dilaurate. The HLAC was used to get a bio-functionalized PU matrix reinforced with GNPs by step-growth polymerization method. The structural, surface, and thermal properties of the HLAC and GNPs-HLAC-PU bionanocomposites were studied. The spectroscopic techniques confirmed the structure of bionanocomposites by the identification of related bands. The SEM/EDX results demonstrated that the 0.3 wt% of GNPs dispersed well in the HLAC-PU matrix and offered higher crystallinity. The reinforcement of the 0.3 wt% of GNPs has meaningfully enhanced the thermal stability producing higher residue contents. The reinforced GNPs filler increased the water resistance of bionanocomposites by reducing their water vapor permeability.
生物纳米复合材料是一类新兴的生物杂化材料,由于其具有高性能、质轻、独特和环保等特性,在环境和生物医学领域具有重要的应用价值。在多相生物纳米复合材料体系中,一个主要的挑战是通过控制反应组分的个体性能来实现对性能的精细控制。本文介绍了基于石墨烯纳米片(GNPs)和羟乙基纤维素接枝聚(乳酸)共聚物-聚氨酯(HLAC-PU)的生物纳米复合材料体系的初步研究,旨在了解其在电子和医疗领域的结构与性能关系。HLAC 是通过羟乙基纤维素(HEC)和乳酸(LA)与二月桂酸二丁基锡的接枝共聚反应制备的。HLAC 被用于通过逐步聚合方法制备生物功能化的 PU 基质增强 GNPs 的生物纳米复合材料。研究了 HLAC 和 GNPs-HLAC-PU 生物纳米复合材料的结构、表面和热性能。光谱技术通过识别相关谱带确认了生物纳米复合材料的结构。SEM/EDX 结果表明,0.3wt%的 GNPs 在 HLAC-PU 基质中分散良好,并具有更高的结晶度。添加 0.3wt%的 GNPs 显著提高了热稳定性,产生了更高的残留含量。增强的 GNPs 填料通过降低水蒸气透过率提高了生物纳米复合材料的耐水性。