Unveiling Highly Sensitive Active Site in Atomically Dispersed Gold Catalysts for Enhanced Ethanol Dehydrogenation

Author:

Yang Ji123ORCID,Zheng Juan2,Dun Chaochao3,Falling Lorenz J.4,Zheng Qi5,Chen Jeng‐Lung6,Zhang Miao7,Jaegers Nicholas R.7,Asokan Chithra7,Guo Jinghua4,Salmeron Miquel5,Prendergast David3,Urban Jeffrey J.3,Somorjai Gabor A.7,Guo Yanbing2,Su Ji1ORCID

Affiliation:

1. Energy Storage and Distributed Resources Division Lawrence Berkeley National Laboratory 94720 Berkeley California United States

2. College of Chemistry Central China Normal University 430079 Wuhan People's Republic of China

3. The Molecular Foundry Lawrence Berkeley National Laboratory 94720 Berkeley California United States

4. Advanced Light Source Lawrence Berkeley National Laboratory 94720 Berkeley California United States

5. Materials Sciences Division Lawrence Berkeley National Laboratory 94720 Berkeley California United States

6. National Synchrotron Radiation Research Center Science-Based Industrial Park 30076 Hsinchu Taiwan

7. College of Chemistry University of California-Berkeley 94720 Berkeley California United States

Abstract

AbstractDeveloping a desirable ethanol dehydrogenation process necessitates a highly efficient and selective catalyst with low cost. Herein, we show that the “complex active site” consisting of atomically dispersed Au atoms with the neighboring oxygen vacancies (Vo) and undercoordinated cation on oxide supports can be prepared and display unique catalytic properties for ethanol dehydrogenation. The “complex active site” Au−Vo−Zr3+ on Au1/ZrO2 exhibits the highest H2 production rate, with above 37,964 mol H2 per mol Au per hour (385 g H2   h−1) at 350 °C, which is 3.32, 2.94 and 15.0 times higher than Au1/CeO2, Au1/TiO2, and Au1/Al2O3, respectively. Combining experimental and theoretical studies, we demonstrate the structural sensitivity of these complex sites by assessing their selectivity and activity in ethanol dehydrogenation. Our study sheds new light on the design and development of cost‐effective and highly efficient catalysts for ethanol dehydrogenation. Fundamentally, atomic‐level catalyst design by colocalizing catalytically active metal atoms forming a structure‐sensitive “complex site”, is a crucial way to advance from heterogeneous catalysis to molecular catalysis. Our study advanced the understanding of the structure sensitivity of the active site in atomically dispersed catalysts.

Funder

Office of Energy Efficiency and Renewable Energy

U.S. Department of Energy

National Natural Science Foundation of China

Publisher

Wiley

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