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Development and characterization of silane crosslinked cellulose/graphene oxide conductive hydrophobic membrane

材料科学 纤维素 石墨烯 热稳定性 润湿 化学工程 焦耳加热 接触角 拉曼光谱 复合材料 表面改性 氧化物 纳米技术 化学 生物化学 物理 光学 工程类 冶金
作者
Xiaodong Tan,Yingze Jiang,Qingyan Peng,Tereza Šubrová,Jana Šašková,Jakub Wiener,Mohanapriya Venkataraman,Jiřı́ Militký,Pavel Kejzlar,Arunjunai Raj Mahendran,Herfried Lammer,Wei Xiong
出处
期刊:Cellulose [Springer Nature]
卷期号:30 (7): 4561-4574 被引量:9
标识
DOI:10.1007/s10570-023-05079-x
摘要

Abstract The development of environmentally friendly, multifunctional conductive membranes is an ideal candidate for future new electronic components. Some cellulose-based electronic sensors have been studied, such as pressure sensors, hydrothermal sensors, flexible sensors, optoelectronic devices, and electrochemical energy storage, etc. However, there are very few studies on cellulose-based conductive materials in Joule heating. In this study, we adopted a simple and environmentally friendly silane crosslinking method to crosslink cellulose and graphene oxide (GO) together. The cellulose/GO hybrid membrane were characterized by FTIR, Raman, SEM, AFM, TGA, surface wettability, self-cleaning, surface resistance, Joule heating and other tests. Results showed that the covalent bond between cellulose and GO was formed by vinyltrimethoxysilane (VTMS), and GO was successfully cross-linked on the surface of the cellulose membrane. The cellulose/GO hybrid membrane has good thermal stability, strong hydrophobicity and self-cleaning properties. When the GO concentration was 3 w/w%, the Young's modulus of the film reached the maximum (47.38% higher than that of the original sample). In addition, it also exhibited extremely low surface resistivity (720.69 Ω), controllable Joule heating capability, extremely fast thermal response (heating process and cooling process within 5 s) and good electrothermal stability. It showed great potential in multi-functional electronic products such as electric heating electronic devices, electric heating sensors, and smart clothing in the future.
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