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具有超薄多孔壁和可控表面结构的空心金属纳米晶体。

Hollow Metal Nanocrystals with Ultrathin, Porous Walls and Well-Controlled Surface Structures.

机构信息

School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

The Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA, 30332, USA.

出版信息

Adv Mater. 2018 Nov;30(48):e1801956. doi: 10.1002/adma.201801956. Epub 2018 Jul 8.

Abstract

Recent developments of a novel class of catalytic materials built on hollow nanocrystals having ultrathin, porous walls, and well-controlled surface structures are discussed, with a focus on platinum and the oxygen reduction reaction (ORR). An introduction is given to the critical role of platinum in the proton exchange membrane fuel cells, and the pressing need to develop a strategy for achieving cost-effective and sustainable use of this precious metal. How to maximize the mass activity of ORR catalysts based on platinum by rationally engineering the surface structure while increasing the utilization efficiency of atoms is then discussed. After reporting on the synthetic methods involving galvanic replacement and seed-mediated growth followed by etching, respectively, a number of examples to demonstrate the enhancement in activity and durability for this new class of catalytic materials are showcased. The feasibility to have the methodology extended from platinum to other precious metals such as gold and ruthenium is highlighted. In conclusion, some of the remaining issues and emerging solutions are examined.

摘要

本文讨论了一类新型催化材料的最新进展,这些材料构建在具有超薄多孔壁和可控表面结构的中空纳米晶体上,重点是铂和氧还原反应(ORR)。本文首先介绍了铂在质子交换膜燃料电池中的关键作用,以及迫切需要开发一种策略来实现对这种贵金属的经济高效和可持续利用。然后讨论了如何通过合理设计表面结构同时提高原子利用率来最大限度地提高基于铂的 ORR 催化剂的质量活性。在分别报告了涉及电置换和种子介导生长随后进行蚀刻的合成方法之后,展示了许多例子来说明这种新型催化材料的活性和耐久性的提高。强调了将该方法从铂扩展到其他贵金属如金和钌的可行性。最后,研究了一些剩余问题和新兴解决方案。

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