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用于直接烃类固体氧化物燃料电池的纳米纤维复合材料作为高活性和稳健的阳极

Nanofiber Composites as Highly Active and Robust Anodes for Direct-Hydrocarbon Solid Oxide Fuel Cells.

作者信息

Choi Yoonseok, Cho Hee-Jin, Kim Jinwook, Kang Joon-Young, Seo Jongsu, Kim Jun Hyuk, Jeong Seung Jin, Lim Dae-Kwang, Kim Il-Doo, Jung WooChul

机构信息

High Temperature Energy Conversion Laboratory, Korea Institute of Energy Research (KIER), 152 Gajeong-ro, Yuseong-gu, Daejeon 34101, Republic of Korea.

Korea Advanced Institute of Science and Technology (KAIST), Department of Materials Science and Engineering, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.

出版信息

ACS Nano. 2022 Sep 27;16(9):14517-14526. doi: 10.1021/acsnano.2c04927. Epub 2022 Aug 25.

Abstract

Direct utilization of methane fuels in solid oxide fuel cells (SOFCs) is a key technology to realize the immediate inclusion of such high-efficiency fuel cells into the current electricity generation infrastructure. However, the broad commercialization of direct-methane fueled SOFCs is critically hindered by the inadequate electrode activity and their poor longevity, which primarily stems from the carbon build-up issues. To make the technology more competitive, a novel electrode structure that can dramatically improve the tolerance against coking is essential. Herein, we present highly active and robust core-shell nanofiber anodes, LaSrCrMnO@SmCeO (LSCM@SDC), directly obtained with a single-nozzle electrospinning process through the use of two immiscible polymers. The intimate coverage of SDC on LSCM not only increases the active reaction sites but also promotes resistance toward carbon deposition and thermal aggregation. As such, the electrode polarization resistance obtained with LSCM@SDC NFs is among the lowest value ever reported with LSCM derivatives (∼0.11 Ω cm in wet H at 800 °C). The facile fabrication process of such complex heterostructures developed in this work is attractive for the design of not only SOFC electrodes but also other solid-state devices such as electrolysis cells, membrane reformers, and protonic cells.

摘要

在固体氧化物燃料电池(SOFC)中直接利用甲烷燃料是一项关键技术,可使这种高效燃料电池立即融入当前的发电基础设施。然而,直接以甲烷为燃料的SOFC广泛商业化受到电极活性不足及其寿命较短的严重阻碍,这主要源于积碳问题。为使该技术更具竞争力,一种能够显著提高抗结焦能力的新型电极结构至关重要。在此,我们展示了通过使用两种互不相溶的聚合物,采用单喷嘴静电纺丝工艺直接制备的高活性且坚固的核壳纳米纤维阳极LaSrCrMnO@SmCeO(LSCM@SDC)。SDC在LSCM上的紧密覆盖不仅增加了活性反应位点,还提高了对碳沉积和热聚集的抗性。因此,用LSCM@SDC纳米纤维获得的电极极化电阻是有报道的LSCM衍生物中最低的值之一(在800℃的湿氢气中约为0.11Ω·cm)。这项工作中开发的这种复杂异质结构的简便制造工艺不仅对SOFC电极的设计有吸引力,而且对其他固态器件如电解池、膜重整器和质子电池的设计也有吸引力。

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