Multi‐Scale Engineered 2D Carbon Polyhedron Array with Enhanced Electrocatalytic Performance

Author:

Song Xiaokai12ORCID,Song Yujie13,Li Xiaopeng3,Wu Xiaotong3,Wang Zequn4,Sun Xuhui4,An Meng4,Wei Xiaoqian2,Zhao Yingji2,Wei Jiamin1,Bi Chenglu1,Sun Jianhua1,Nara Hiroki2,You Jungmok5,Yamauchi Yusuke2567ORCID

Affiliation:

1. Institute of Advanced Functional Materials for Energy School of Chemistry and Chemical Engineering Jiangsu University of Technology Changzhou 213001 China

2. Research Center for Materials Nanoarchitectonics (MANA) National Institute for Materials Science (NIMS) 1‐1 Namiki Tsukuba 305‐0044 Japan

3. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials & College of Materials Science and Engineering Donghua University Shanghai 201620 China

4. College of Mechanical and Electrical Engineering Shanxi University of Science and Technology Xi'an 710021 China

5. Department of Plant and Environmental New Resources College of Life Sciences Kyung Hee University Gyeonggi‐do 17104 South Korea

6. Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya 464‐8603 Japan

7. Australian Institute for Bioengineering and Nanotechnology (AIBN) The University of Queensland Brisbane Queensland 4072 Australia

Abstract

AbstractElectrocatalyst engineering from the atomic to macroscopic level of electrocatalysts is one of the most powerful routes to boost the performance of electrochemical devices. However, multi‐scale structure engineering mainly focuses on the range of atomic‐to‐particle scale such as hierarchical porosity engineering, while catalyst engineering at the macroscopic level, such as the arrangement configuration of nanoparticles, is often overlooked. Here, a 2D carbon polyhedron array with a multi‐scale engineered structure via facile chemical etching, ice‐templating induced self‐assembly, and high‐temperature pyrolysis processes is reported. Controlled phytic acid etching of the carbon precursor introduces homogeneous atomic phosphorous and nitrogen doping, as well as a well‐defined mesoporous structure. Subsequent ice‐templated self‐assembly triggers the formation of a 2D particle array superstructure. The atomic‐level doping gives rise to high intrinsic activity, while the well‐engineered porous structure and particle arrangement addresses the mass transport limitations at the microscopic particle level and macroscopic electrode level. As a result, the as‐prepared electrocatalyst delivers outstanding performance toward oxygen reduction reaction in both acidic and alkaline media, which is better than recently reported state‐of‐the‐art metal‐free electrocatalysts. Molecular dynamics simulation together with extensive characterizations indicate that the performance enhancement originates from multi‐scale structural synergy.

Funder

Fundamental Research Funds for the Central Universities

Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning

National Natural Science Foundation of China

China Sponsorship Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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