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基于聚吡咯和纤维素纳米纤维的复合薄膜,具有改善的物理和电性能,可用于电磁屏蔽应用。

Polypyrrole and cellulose nanofiber based composite films with improved physical and electrical properties for electromagnetic shielding applications.

机构信息

Department of Chemical Engineering, Auburn University, 212 Ross Hall, Auburn, AL, 36849, United States; Alabama Center for Paper & Bioresource Engineering, Auburn University, 356 Ross Hall, Auburn, AL, 36849, United States.

Department of Chemical Engineering, Auburn University, 212 Ross Hall, Auburn, AL, 36849, United States.

出版信息

Carbohydr Polym. 2020 Jul 15;240:116304. doi: 10.1016/j.carbpol.2020.116304. Epub 2020 Apr 21.

Abstract

Polypyrrole (PPy) and cellulose nanofiber (CNF) based conducting composite films were synthesized using two new approaches, in-situ polymerization of pyrrole onto cellulose nanopaper (PPy/CNP) and polyvinyl alcohol coated cellulose nanopaper (PPy/PVA-CNP). Significant improvement in the conductivity, tensile strength, water resistance, and electromagnetic shielding effectiveness (SE) was observed for these composite films compared to commonly used in-situ nanofiber (ISF) approach, where PPy is coated on nanofibers prior to film preparation. Maximum improvement in conductivity, SE and tensile strength of PPy/PVA-CNP compared to ISF films was attributed to highly uniform and compact PPy coating and reduced porosity. SE of -23 dB (thickness upto 138.4 μm) and tensile strength of 103.8 MPa for PPy/PVA-CNP films are the highest values found in the literature for PPy and CNF based composite films at a comparable thickness. These new approaches could enable a scalable preparation of flexible conducting composite films with superior physical and electrical properties for EMI shielding applications.

摘要

基于聚吡咯 (PPy) 和纤维素纳米纤维 (CNF) 的导电复合膜采用两种新方法合成,即吡咯原位聚合到纤维素纳米纸上 (PPy/CNP) 和聚乙烯醇涂覆的纤维素纳米纸上 (PPy/PVA-CNP)。与常用的原位纳米纤维 (ISF) 方法相比,这些复合膜的导电性、拉伸强度、耐水性和电磁屏蔽效能 (SE) 得到了显著提高,在原位纳米纤维方法中,PPy 是在制备薄膜之前涂覆在纳米纤维上的。与 ISF 薄膜相比,PPy/PVA-CNP 中 PPy 的导电性、SE 和拉伸强度的最大提高归因于高度均匀和致密的 PPy 涂层和降低的孔隙率。PPy/PVA-CNP 薄膜的 SE 为-23dB(厚度可达 138.4μm),拉伸强度为 103.8MPa,这是在可比厚度下基于 PPy 和 CNF 的复合薄膜中在文献中发现的最高值。这些新方法可以实现具有优异物理和电气性能的柔性导电复合膜的可扩展制备,可用于 EMI 屏蔽应用。

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