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Conductive Biomass Films Containing Graphene Oxide and Cationic Cellulose Nanofibers for Electric-Heating Applications  ( SCI-EXPANDED收录)   被引量:3

文献类型:期刊文献

英文题名:Conductive Biomass Films Containing Graphene Oxide and Cationic Cellulose Nanofibers for Electric-Heating Applications

作者:Liang, Shanqing[1] Wang, Huicong[1] Tao, Xin[1]

第一作者:梁善庆

通信作者:Liang, SQ[1]

机构:[1]Chinese Acad Forestry, Res Inst Wood Ind, Beijing 100091, Peoples R China

年份:2021

卷号:11

期号:5

外文期刊名:NANOMATERIALS

收录:;Scopus(收录号:2-s2.0-85128533183);WOS:【SCI-EXPANDED(收录号:WOS:000657013900001)】;

基金:This research was funded by the National Natural Science Foundation of China (Project No.32071705) and the Special Fund of the Chinese Central Government for Basic Scientific Research Operations in Commonwealth Research Institutes (Project No.CAFYBB2016MB001).

语种:英文

外文关键词:graphene; cationic cellulose nanofiber; conductivity; electric-heating performance; power density

摘要:A low-voltage biomass matrix and flexible electric-heating composite with graphene oxide (GO) and cationic cellulose nanofiber (CCNF) were fabricated by ultrasonic dispersion and suction filtration. The main results show that the tensile strength and strain of the films decreased with an increase in the GO content, but the thermal stability increased. The GO/CCNF film underwent rapid thermal decomposition at 250-350 degrees C, and the maximum degradation temperature was higher by 19 degrees C compared to that of the pure CCNF film. It was found that the electrical conductivity increased from 0.013 to 2.96 S/cm with an increase in the GO content from 20 to 60 wt%, resulting in an increase in the power density from 122 to 2456 W/m(2). The films could rapidly attain the temperature within 50 s, and the heat transferred by radiation and convection was 21.62 mW/degrees C, thereby exhibiting excellent electric heating response. Moreover, the film demonstrated a stable electric-heating cycle after a 12.5 h cycling test and meets the requirements of low-temperature electric heating products under the 36 V electric safety limit, which expands the potential applications of biomass-derived cellulose nanofibers.

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