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A stable low-temperature H2-production catalyst by crowding Pt on a-MoC

Authors :
Zhang, Xiao
Zhang, Mengtao
Deng, Yuchen
Xu, Mingquan
Artiglia, Luca
Wen, Wen
Gao, Rui
Chen, Bingbing
Yao, Siyu
Zhang, Xiaochen
Peng, Mi
Yan, Jie
Li, Aowen
Jiang, Zheng
Gao, Xingyu
Cao, Sufeng
Yang, Ce
Kropf, A. Jeremy
Shi, Jinan
Xie, Jinglin
Bi, Mingshu
van Bokhoven, Jeroen A.
Li, Yong-Wang
Wen, Xiaodong
Flytzani-Stephanopoulos, Maria
Shi, Chuan
Zhou, Wu
Ma, Ding
Source :
Nature; January 2021, Vol. 589 Issue: 7842 p396-401, 6p
Publication Year :
2021

Abstract

The water–gas shift (WGS) reaction is an industrially important source of pure hydrogen (H2) at the expense of carbon monoxide and water1,2. This reaction is of interest for fuel-cell applications, but requires WGS catalysts that are durable and highly active at low temperatures3. Here we demonstrate that the structure (Pt1–Ptn)/a-MoC, where isolated platinum atoms (Pt1) and subnanometre platinum clusters (Ptn) are stabilized on a-molybdenum carbide (a-MoC), catalyses the WGS reaction even at 313 kelvin, with a hydrogen-production pathway involving direct carbon monoxide dissociation identified. We find that it is critical to crowd the a-MoC surface with Pt1and Ptnspecies, which prevents oxidation of the support that would cause catalyst deactivation, as seen with gold/a-MoC (ref. 4), and gives our system high stability and a high metal-normalized turnover number of 4,300,000 moles of hydrogen per mole of platinum. We anticipate that the strategy demonstrated here will be pivotal for the design of highly active and stable catalysts for effective activation of important molecules such as water and carbon monoxide for energy production.

Details

Language :
English
ISSN :
00280836 and 14764687
Volume :
589
Issue :
7842
Database :
Supplemental Index
Journal :
Nature
Publication Type :
Periodical
Accession number :
ejs55410613
Full Text :
https://doi.org/10.1038/s41586-020-03130-6