Tensile‐Strained Holey Pd Metallene toward Efficient and Stable Electrocatalysis

Author:

Zeng Tiantian1,Meng Xiaomin1,Sun Shiwei1,Ling Miao1,Zhang Chuanhui1,Yuan Weiyong23,Cao Dapeng4,Niu Mang1,Zhang Lian Ying12ORCID,Li Chang Ming5

Affiliation:

1. Institute of Materials for Energy and Environment Institute of Biochemical Engineering College of Materials Science and Engineering Qingdao University Qingdao 266071 P. R. China

2. Chongqing Key Laboratory for Advanced Materials & Technologies of Clean Energies Institute for Clean Energy and Advanced Materials Southwest University Chongqing 400715 P. R. China

3. Ningbo Research Institute Zhejiang University Ningbo 315100 P. R. China

4. State Key Laboratory of Organic‐Inorganic Composites Beijing University of Chemical Technology Beijing 100029 P. R. China

5. Institute for Materials Science and Devices Suzhou University of Science and Technology Suzhou 215011 P. R. China

Abstract

AbstractNoble metal‐based metallenes are attracting intensive attention in energy catalysis, but it is still very challenging to precisely control the surface structures of metallenes for higher catalytic properties on account of their intrinsic thermodynamic instability. Herein, the synthesis of tensile‐strained holey Pd metallene by oxidative etching is reported using hydrogen peroxide, which exhibits highly enhanced catalytic activity and stability in comparison with normal Pd metallene toward both oxygen reduction reaction and formic acid oxidation. The pre‐prepared Pd metallene functions as a catalyst to decompose hydrogen peroxide, and the Pd atoms in amorphous regions of Pd metallene are preferentially removed by the introduced hydrogen peroxide during the etching process. The greatly enhanced ORR activity is mainly determined by the strong electrostatic repulsion between intermediate O* and the dopant O, which balances the adsorption strength of O* on Pd sites, ultimately endowing a weakened adsorption energy of O* on TH‐Pd metallene. This work creates a facile and economical strategy to precisely shape metallene‐based nanoarchitectures with broad applications for energy systems and sensing devices.

Funder

Chongqing Key Laboratory for Advanced Materials and Technologies of Clean Energies

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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