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3D 打印晶格结构金属电极提高生物电化学系统中的电流产量。

3D Printed lattice-structured metal electrodes for enhanced current production in bioelectrochemical systems.

机构信息

Institute of Livestock and Grassland Science, National Agriculture and Food Research Organization, Tsukuba, Japan.

Industrial Research Institute of Ishikawa, Kanazawa, Japan.

出版信息

Environ Technol. 2023 Sep;44(21):3229-3235. doi: 10.1080/09593330.2022.2056083. Epub 2022 Apr 3.

Abstract

Bioelectrochemical systems (BESs) are emerging techniques that use biological production of current for versatile activities, including energy recovery and bioremediation. The development of high-performance three-dimensional (3D) electrodes has attracted attention for facilitating current production in BESs. Carbon-based electrodes have been commonly used in BESs, but metal electrodes are not generally employed because of their low biocompatibility with microbes. In this study, 3D stainless-steel electrodes, composed of octahedral lattice, were fabricated using the 3D printing technique. Heat treatment was conducted to form an iron-oxide layer on the electrode surface for increasing biocompatibility. Another crucial parameter that determines current production is the pitch length of a lattice electrode as it affects the surface area and substrate diffusion. The pitch length was optimized by testing the lattice electrodes with pitches ranging from 1.5 mm to 6.0 mm. The highest current, obtained with the 3.0 mm-pitch electrode, was 50% higher than that obtained with common 3D carbon-felt electrodes. These results demonstrate the usefulness of 3D lattice-structured metal electrodes in BESs.

摘要

生物电化学系统(BESs)是一种新兴技术,利用生物产生电流来实现多种活性,包括能量回收和生物修复。为了促进 BESs 中的电流产生,高性能三维(3D)电极的开发引起了关注。碳基电极已在 BESs 中得到广泛应用,但金属电极通常不被采用,因为它们与微生物的生物相容性较低。在这项研究中,使用 3D 打印技术制造了由八面体晶格组成的 3D 不锈钢电极。进行热处理以在电极表面形成氧化铁层,从而提高生物相容性。另一个决定电流产生的关键参数是晶格电极的节距长度,因为它会影响表面积和基质扩散。通过测试节距从 1.5mm 到 6.0mm 的晶格电极来优化节距长度。在 3.0mm 节距电极上获得的最高电流比普通 3D 碳纤维电极上获得的电流高 50%。这些结果表明 3D 晶格结构金属电极在 BESs 中的有用性。

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