Constructing Asymmetrical Coordination Microenvironment with Phosphorus‐Incorporated Nitrogen‐Doped Carbon to Boost Bifunctional Oxygen Electrocatalytic Activity

Author:

Li Zhijun1ORCID,Ji Siqi1,Liu Hongxue1,Xu Chang2,Guo Chunmin1,Lu Xue1,Sun Haixin3,Dou Shuo3,Xin Shixuan1,Horton J. Hugh14,He Cheng2

Affiliation:

1. National Key Laboratory of Continental Shale oil Joint International Research Laboratory of Advanced Chemical Catalytic Materials & Surface Science College of Chemistry and Chemical Engineering Northeast Petroleum University Daqing 163318 P. R. China

2. State Key Laboratory for Mechanical Behavior of Materials School of Materials Science and Engineering Xi'an Jiaotong University Xi'an 710049 P. R. China

3. Key Laboratory of Bio‐based Material Science and Technology of Ministry of Education Northeast Forestry University Harbin 150040 P. R. China

4. Department of Chemistry Queen′s University Kingston K7L 3N6 Canada

Abstract

AbstractCarbon‐based metal‐free electrocatalysts have been recognized as inexpensive alternatives to afford excellent activity in oxygen reduction/evolution reactions (ORR/OER). Nevertheless, precisely identifying the local active sites and tailoring the corresponding electronic properties to enhance the reaction kinetics remain challenging. Herein, a facile strategy to create a metal‐free electrocatalyst comprised of a mesoporous nitrogen‐doped carbon matrix with phosphorus incorporation (NPC) is described. The as‐prepared NPC‐950 electrocatalyst demonstrates superior ORR activity under alkaline and acidic conditions with half‐wave potentials of 0.88 and 0.72 V, respectively, comparable to commercial Pt/C (0.85 and 0.76 V) and overwhelmingly superior to other N‐doped carbon catalyst materials. In addition, a remarkable promotion of OER activity under alkaline conditions is observed. Notably, a zinc–air battery equipped with this NCP‐950 electrocatalyst exhibits exceptional performance in peak power density, specific capacity, and long‐term operation durability. Theoretical calculations uncover that the incorporation of phosphorus in NC material results in effective charge density redistribution, thus modulating the electronic properties of active sites to achieve optimum adsorption and desorption of ORR intermediates. The work provides a deep understanding of active sites in heteroatom‐doped carbon materials and highlights the importance of the electronic properties modulation in oxygen bifunctional electrocatalytic activity.

Publisher

Wiley

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