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水性聚氨酯分散体及薄膜:生物降解与抗菌性能。

Waterborne Polyurethane Dispersions and Thin Films: Biodegradation and Antimicrobial Behaviors.

机构信息

School of Engineering, Behrend College, Pennsylvania State University, Erie, PA 16563, USA.

Department of Chemistry, Faculty of Science, Cairo University, Giza 12613, Egypt.

出版信息

Molecules. 2021 Feb 11;26(4):961. doi: 10.3390/molecules26040961.

Abstract

Biodegradable and antimicrobial waterborne polyurethane dispersions (PUDs) and their casted solid films have recently emerged as important alternatives to their solvent-based and non-biodegradable counterparts for various applications due to their versatility, health, and environmental friendliness. The nanoscale morphology of the PUDs, dispersion stability, and the thermomechanical properties of the solid films obtained from the solvent cast process are strongly dependent on several important parameters, such as the preparation method, polyols, diisocyanates, solid content, chain extension, and temperature. The biodegradability, biocompatibility, antimicrobial properties and biomedical applications can be tailored based on the nature of the polyols, polarity, as well as structure and concentration of the internal surfactants (anionic or cationic). This review article provides an important quantitative experimental basis and structure evolution for the development and synthesis of biodegradable waterborne PUDs and their solid films, with prescribed macromolecular properties and new functions, with the aim of understanding the relationships between polymer structure, properties, and performance. The review article will also summarize the important variables that control the thermomechanical properties and biodegradation kinetics, as well as antimicrobial and biocompatibility behaviors of aqueous PUDs and their films, for certain industrial and biomedical applications.

摘要

可生物降解和抗菌水基聚氨酯分散体(PUD)及其铸造的固体薄膜最近因其多功能性、健康和环境友好性而成为各种应用中溶剂型和不可生物降解型对应物的重要替代品。PUD 的纳米级形态、分散体稳定性以及溶剂浇铸过程获得的固体薄膜的热机械性能强烈依赖于几个重要参数,如制备方法、多元醇、二异氰酸酯、固含量、扩链和温度。基于多元醇的性质、极性以及内部表面活性剂(阴离子或阳离子)的结构和浓度,可以定制生物降解性、生物相容性、抗菌性能和生物医学应用。本文综述为具有规定的大分子性质和新功能的可生物降解水基 PUD 及其固体薄膜的开发和合成提供了重要的定量实验基础和结构演变,旨在了解聚合物结构、性能和性能之间的关系。该综述文章还将总结控制水基 PUD 及其薄膜的热机械性能和生物降解动力学以及抗菌和生物相容性行为的重要变量,以满足某些工业和生物医学应用的需求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8607/7918248/f33cce4c88c6/molecules-26-00961-g001.jpg

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