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用于氢燃料电池的铂电催化剂向先进三维结构的协同结构转变

Synergetic Structural Transformation of Pt Electrocatalyst into Advanced 3D Architectures for Hydrogen Fuel Cells.

作者信息

Kim Jong Min, Kim Joo-Hyung, Kim Jun, Lim Youngjoon, Kim Yongmin, Alam Afroz, Lee Jaeseung, Ju Hyunchul, Ham Hyung Chul, Kim Jin Young

机构信息

Center for Hydrogen and Fuel Cell Research, Korea Institute of Science and Technology (KIST), Seoul, 02792, Republic of Korea.

Materials Architecturing Research Center, Korea Institute of Science and Technology (KIST), Seoul, 02792, Republic of Korea.

出版信息

Adv Mater. 2020 Dec;32(51):e2002210. doi: 10.1002/adma.202002210. Epub 2020 Sep 28.

DOI:10.1002/adma.202002210
PMID:32989883
Abstract

A new direction for developing electrocatalysts for hydrogen fuel cell systems has emerged, based on the fabrication of 3D architectures. These new architectures include extended Pt surface building blocks, the strategic use of void spaces, and deliberate network connectivity along with tortuosity, as design components. Various strategies for synthesis now enable the functional and structural engineering of these electrocatalysts with appropriate electronic, ionic, and electrochemical features. The new architectures provide efficient mass transport and large electrochemically active areas. To date, although there are few examples of fully functioning hydrogen fuel cell devices, these 3D electrocatalysts have the potential to achieve optimal cell performance and durability, exceeding conventional Pt powder (i.e., Pt/C) electrocatalysts. This progress report highlights the various 3D architectures proposed for Pt electrocatalysts, advances made in the fabrication of these structures, and the remaining technical challenges. Attempts to develop design rules for 3D architectures and modeling, provide insights into their achievable and potential performance. Perspectives on future developments of new multiscale designs are also discussed along with future study directions.

摘要

基于三维结构的制备,氢燃料电池系统电催化剂的开发出现了一个新方向。这些新结构包括扩展的铂表面构建块、空隙空间的策略性利用、以及精心设计的网络连通性和曲折度等设计要素。目前,各种合成策略能够对这些电催化剂进行功能和结构工程设计,使其具备适当的电子、离子和电化学特性。这些新结构提供了高效的质量传输和较大的电化学活性面积。迄今为止,尽管完全功能化的氢燃料电池装置实例很少,但这些三维电催化剂有潜力实现最佳的电池性能和耐久性,超越传统的铂粉(即Pt/C)电催化剂。本进展报告重点介绍了为铂电催化剂提出的各种三维结构、这些结构制备方面取得的进展以及剩余的技术挑战。尝试为三维结构制定设计规则并进行建模,有助于深入了解其可实现的性能和潜在性能。还讨论了新型多尺度设计的未来发展前景以及未来的研究方向。

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