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碳化纤维素纳米纤维具有个性化的纤维形态:在聚己内酯导电复合材料中的多功能应用。

Carbonized Cellulose Nanofibril with Individualized Fibrous Morphology: toward Multifunctional Applications in Polycaprolactone Conductive Composites.

机构信息

School of Renewable Natural Resources, Louisiana State University, Baton Rouge, Louisiana 70803, United States.

College of Forestry, Sichuan Agricultural University, Chengdu 611130, China.

出版信息

ACS Appl Bio Mater. 2021 Jun 21;4(6):5169-5179. doi: 10.1021/acsabm.1c00360. Epub 2021 May 19.

DOI:10.1021/acsabm.1c00360
PMID:35007000
Abstract

Drying cellulose nanofibril (CNF) from aqueous suspensions often leads to aggregated fibril morphology, negatively affecting its performance in ensuing applications. In this work, we introduced a new solvent drying approach to acquire dry CNF from aqueous suspensions and subsequently pyrolyzed the CNF precursor to obtain carbonized CNF (CCNF) without loss of its fibrous morphology. The fibrous CCNF was dispersed homogeneously in polycaprolactone (PCL) thermoplastic resin, greatly enhancing PCL composite tensile performance. After being further mixed with carbon black (CB), the CCNF helped to minimize CB aggregation due to formation of interconnected three-dimensional (3D) structures. The CCNF/CB/PCL composite exhibited superior electrical conductivity ascribed to electrons transporting more efficiently among CB aggregates. The composite is also suitable for applications such as 3D printed electromagnetic interference (EMI) shielding and deformation sensing. Specifically, the 3D printed EMI shielding composite efficiently absorbed EM radiation in the frequency range of 4-26 GHz, and the 3D printed deformation sensor exhibited excellent sensitivity, durability, and flexibility in monitoring mechanical distortions. Herein, this study sheds light on the development of multifunctional conductive composites embedded with fibrous CCNF from sustainable resources.

摘要

从水悬浮液中干燥纤维素纳米纤维(CNF)通常会导致纤维聚集形态,从而对其后续应用中的性能产生负面影响。在这项工作中,我们引入了一种新的溶剂干燥方法,从水悬浮液中获得干燥的 CNF,然后将 CNF 前体热解以获得碳化 CNF(CCNF),而不会损失其纤维形态。纤维状的 CCNF 均匀分散在聚己内酯(PCL)热塑性树脂中,极大地提高了 PCL 复合材料的拉伸性能。进一步与炭黑(CB)混合后,由于形成相互连接的三维(3D)结构,CCNF 有助于最小化 CB 聚集。CCNF/CB/PCL 复合材料表现出优异的导电性,这归因于电子在 CB 聚集体之间更有效地传输。该复合材料还适用于 3D 打印电磁干扰(EMI)屏蔽和变形感应等应用。具体而言,3D 打印 EMI 屏蔽复合材料在 4-26GHz 的频率范围内有效地吸收了电磁辐射,而 3D 打印变形传感器在监测机械变形方面表现出出色的灵敏度、耐用性和灵活性。本研究为从可持续资源中开发嵌入纤维状 CCNF 的多功能导电复合材料提供了思路。

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