Electro-conductively deposited carbon fibers for power controllable heating elementsElectronic supplementary information (ESI) available. See DOI: 10.1039/c5ra01296a

Carbon fibers are considered as one of the promising heating elements in various industrial applications because of their excellent thermal stability and electrical conductivity. In order to achieve controllability of the power output, gas-phase carbon deposition was carried out on the surface of ca...

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Main Authors Kim, Chang Hyo, Kim, Moo Sung, Kim, Yoong Ahm, Yang, Kap Seung, Baek, Seung Jo, Lee, Young-Jun, Yang, Cheol-Min, Lee, Yang Jin, Hwang, Jun Yeon
Format Journal Article
LanguageEnglish
Published 16.03.2015
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Summary:Carbon fibers are considered as one of the promising heating elements in various industrial applications because of their excellent thermal stability and electrical conductivity. In order to achieve controllability of the power output, gas-phase carbon deposition was carried out on the surface of carbon fibers by flowing a mixture of liquefied petroleum gas and hydrogen via electro-conduction chemical vapor deposition. We confirmed the tuning ability of the temperature ranging from 800 to 1330 °C. The microtexture of the deposited carbon was sequentially changed; the initial layer with small-sized domains, the intermediate layer with medium crystallinity, and the top layer with large-sized domains and high crystallinity. However, the linear decrease in the electrical conductivity of the heating elements was ascribed to the change in the growing direction of the crystallites from a longitudinal to a perpendicular direction with respect to the fibers. The wide range of power output for our carbon fiber composites from 270 to 448 W at 50 V will be useful for various industrial electric heating applications. Carbon fibers are considered as one of the promising heating elements in various industrial applications because of their excellent thermal stability and electrical conductivity.
Bibliography:10.1039/c5ra01296a
Electronic supplementary information (ESI) available. See DOI
ISSN:2046-2069
DOI:10.1039/c5ra01296a