Semimetal-triggered covalent interaction in Pt-based intermetallics for fuel-cell electrocatalysis

Author:

Cheng Han1,Gui Renjie1,Chen Chen2,Liu Si3,Cao Xuemin1,Yin Yifan1,Ma Ruize1,Wang Wenjie2,Zhou Tianpei1,Zheng Xusheng2,Chu Wangsheng2,Xie Yi14,Wu Changzheng14

Affiliation:

1. Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China , Hefei 230029 , China

2. National Synchrotron Radiation Laboratory, University of Science and Technology of China , Hefei 230029 , China

3. Chemistry Experiment Teaching Center, School of Chemistry and Materials Science, University of Science and Technology of China , Hefei 230029 , China

4. Institute of Energy, Hefei Comprehensive National Science Center , Hefei 230026 , China

Abstract

ABSTRACT Platinum-based intermetallic compounds (IMCs) play a vital role as electrocatalysts in a range of energy and environmental technologies, such as proton exchange membrane fuel cells. However, the synthesis of IMCs necessitates recombination of ordered Pt-M metallic bonds with high temperature driving, which is generally accompanied by side effects for catalysts’ structure and performance. In this work, we highlight that semimetal atoms can trigger covalent interactions to break the synthesis-temperature limitation of platinum-based intermetallic compounds and benefit fuel-cell electrocatalysis. Attributed to partial fillings of p-block in semimetal elements, the strong covalent interaction of d-p π backbonding can benefit the recombination of ordered Pt-M metallic bonds (PtGe, PtSb and PtTe) in the synthesis process. Moreover, this covalent interaction in metallic states can further promote both electron transport and orbital fillings of active sites in fuel cells. The semimetal-Pt IMCs were obtained with a temperature 300 K lower than that needed for the synthesis of metal-Pt intermetallic compounds and reached the highest CO-tolerant oxygen reduction activity (0.794 A mg−1 at 0.9 V and 5.1% decay under CO poisoning) among reported electrocatalysts. We anticipate that semimetal-Pt IMCs will offer new insights for the rational design of advanced electrocatalysts for fuel cells.

Funder

Chinese Academy of Sciences

National Natural Science Foundation of China

National Key Research and Development Program of China

University of Science and Technology of China

University Synergy Innovation Program of Anhui Province

Publisher

Oxford University Press (OUP)

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