Venkateshaiah Abhilash, Padil Vinod V T, Nagalakshmaiah Malladi, Waclawek Stanisław, Černík Miroslav, Varma Rajender S
Department of Nanomaterials in Natural Sciences, Institute for Nanomaterials, Advanced Technology and Innovation, Technical University of Liberec, 461 17 Liberec, Czech Republic.
IMT Lille Douai, Department of Polymers and Composites Technology and Mechanical Engineering (TPCIM), 941 rue Charles Bourseul, CS10838, F-59508 Douai, France.
Polymers (Basel). 2020 Feb 27;12(3):512. doi: 10.3390/polym12030512.
Natural biopolymers, a class of materials extracted from renewable sources, is garnering interest due to growing concerns over environmental safety; biopolymers have the advantage of biocompatibility and biodegradability, an imperative requirement. The synthesis of nanoparticles and nanofibers from biopolymers provides a green platform relative to the conventional methods that use hazardous chemicals. However, it is challenging to characterize these nanoparticles and fibers due to the variation in size, shape, and morphology. In order to evaluate these properties, microscopic techniques such as optical microscopy, atomic force microscopy (AFM), and transmission electron microscopy (TEM) are essential. With the advent of new biopolymer systems, it is necessary to obtain insights into the fundamental structures of these systems to determine their structural, physical, and morphological properties, which play a vital role in defining their performance and applications. Microscopic techniques perform a decisive role in revealing intricate details, which assists in the appraisal of microstructure, surface morphology, chemical composition, and interfacial properties. This review highlights the significance of various microscopic techniques incorporating the literature details that help characterize biopolymers and their derivatives.
天然生物聚合物是一类从可再生资源中提取的材料,由于对环境安全的日益关注,正受到越来越多的关注;生物聚合物具有生物相容性和生物可降解性的优点,这是一项必不可少的要求。与使用有害化学物质的传统方法相比,由生物聚合物合成纳米颗粒和纳米纤维提供了一个绿色平台。然而,由于尺寸、形状和形态的变化,对这些纳米颗粒和纤维进行表征具有挑战性。为了评估这些性质,光学显微镜、原子力显微镜(AFM)和透射电子显微镜(TEM)等微观技术至关重要。随着新的生物聚合物系统的出现,有必要深入了解这些系统的基本结构,以确定它们的结构、物理和形态性质,这些性质在定义它们的性能和应用中起着至关重要的作用。微观技术在揭示复杂细节方面起着决定性作用,这有助于评估微观结构、表面形态、化学成分和界面性质。这篇综述强调了各种微观技术的重要性,并纳入了有助于表征生物聚合物及其衍生物的数据细节。