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超声辅助生物聚合物材料制备:综述。

Ultrasound-assisted fabrication of biopolymer materials: A review.

机构信息

Center of Analysis and Testing, Nanjing Normal University, Nanjing 210023, China; School of Chemistry and Materials Science, Nanjing Normal University, Nanjing 210023, China.

Department of Physics and Astronomy, Rowan University, Glassboro, NJ 08028, USA; Department of Chemistry and Biochemistry, Rowan University, Glassboro, NJ 08028, USA.

出版信息

Int J Biol Macromol. 2022 Jun 1;209(Pt B):1613-1628. doi: 10.1016/j.ijbiomac.2022.04.055. Epub 2022 Apr 20.

Abstract

There is an urgent need to develop technologies that can physically manipulate the structure of biocompatible and green polymer materials in order to tune their performance in an efficient, repeatable, easy-to-operate, chemical-free, non-contact, and highly controllable manner. Ultrasound technology produces a cavitation effect that promotes the generation of free radicals, the fracture of chemical chain segments and a rapid change of morphology. The cavitation effects are accompanied by thermal, chemical, and biological effects that interact with the material being studied. With its high efficiency, cleanliness, and reusability applications, ultrasound has a vast range of opportunity within the field of natural polymer-based materials. This work expounds the basic principle of ultrasonic cavitation and analyzes the influence that ultrasonic strength, temperature, frequency and induced liquid surface tension on the physical and chemical properties of biopolymer materials. The mechanism and the influence that ultrasonic modification has on materials is discussed, with highlighted details on the agglomeration, degradation, morphology, structure, and the mechanical properties of these novel materials from naturally derived polymers.

摘要

目前迫切需要开发能够物理操控生物相容和绿色聚合物材料结构的技术,以便以高效、可重复、易于操作、无需化学试剂、非接触和高度可控的方式来调整其性能。超声技术产生空化效应,从而促进自由基的生成、化学键段的断裂以及形态的快速变化。空化效应伴随着热、化学和生物效应,这些效应与被研究的材料相互作用。由于超声技术具有高效、清洁和可重复使用等应用优势,因此在天然聚合物基材料领域具有广泛的应用机会。本文阐述了超声空化的基本原理,并分析了超声强度、温度、频率和诱导液体表面张力对生物聚合物材料物理化学性能的影响。讨论了超声改性对材料的作用机制和影响,重点介绍了新型天然衍生聚合物材料的团聚、降解、形态、结构和力学性能。

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