Cellulose-based fabrics triboelectric nanogenerator: Effect of fabric microstructure on its electrical output

IF 0.7 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of metals, materials and minerals Pub Date : 2023-07-26 DOI:10.55713/jmmm.v33i3.1673
Rawiwan Khwanming, Satana Pongampai, N. Vittayakorn, Thitirat Charoonsuk
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Abstract

At present, fabric-based triboelectric nanogenerator (TENG) has been paid attention and developed for self-power generation systems with wearability for E-textiles, especially cotton. However, there are many commercial cellulose-based fabrics with different fiber characteristics and fabric structures that gain possibility to effect on TENG performance and has been underreported. This work presents the fabrication of the textile TENG by using four types of commercial cellulose-based fabrics as friction layer and compare the electrical output efficiency relating their molecular structure, fabric structure and surface morphology characteristics. As shown by the electrical output, though all fabrics can generate electricity for TENG device, nevertheless, the output signal is different because of their different total surface area of the fabric, affecting by different microstructure. The rayon fabric contains the smallest size fiber with highest surface area at the same woven structure. The obtained output voltage (VOC) and current (ISC) of ⁓23 V and ⁓13 µA are ⁓1.8 times higher than most studied cotton fabric. This research demonstrated the importance of the microstructure and surface area of the fabrics that significantly affect TENG properties. The investigation in this work will useful and knowledgeable to select fabric materials before improving and using them for energy harvesting devices.
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纤维素基织物摩擦电纳米发电机:织物微观结构对其电输出的影响
目前,基于织物的摩擦电纳米发电机(TENG)已成为电子纺织品,特别是棉织物的耐磨自发电系统的研究热点。然而,有许多具有不同纤维特性和织物结构的商用纤维素基织物获得了影响TENG性能的可能性,并且被低估了。本文介绍了用四种商用纤维素基织物作为摩擦层的纺织品TENG的制造,并比较了它们的分子结构、织物结构和表面形貌特征之间的电输出效率。从电输出可以看出,虽然所有面料都可以为TENG设备发电,但是由于面料的总表面积不同,受微观结构不同的影响,输出的信号是不同的。在相同的编织结构中,人造丝织物包含的纤维尺寸最小,比表面积最大。得到的输出电压(VOC)和电流(ISC)分别为⁓23 V和⁓13µA,分别是所研究棉织物的⁓1.8倍。本研究证明了织物的微观结构和表面积对TENG性能有重要影响。这项工作的研究将有助于选择织物材料,然后改进和使用它们作为能量收集装置。
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来源期刊
Journal of metals, materials and minerals
Journal of metals, materials and minerals MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
1.40
自引率
11.10%
发文量
0
期刊介绍: Journal of Metals, Materials and Minerals (JMMM) is a double-blind peer-reviewed international journal published 4 issues per year (starting from 2019), in March, June, September, and December, aims at disseminating advanced knowledge in the fields to academia, professionals and industrialists. JMMM publishes original research articles as well as review articles related to research and development in science, technology and engineering of metals, materials and minerals, including composite & hybrid materials, concrete and cement-based systems, ceramics, glass, refractory, semiconductors, polymeric & polymer-based materials, conventional & technical textiles, nanomaterials, thin films, biomaterials, and functional materials.
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