Single-Atom Anchored g-C3N4 Monolayer as Efficient Catalysts for Nitrogen Reduction Reaction

Author:

Chai Huadou12,Chen Weiguang2,Feng Zhen3ORCID,Li Yi2,Zhao Mingyu2,Shi Jinlei2,Tang Yanan2,Dai Xianqi1

Affiliation:

1. School of Physics, Henan Normal University, Xinxiang 453007, China

2. College of Physics and Electronic Engineering, Zhengzhou Normal University, Zhengzhou 450044, China

3. School of Materials Science and Engineering, Henan Institute of Technology, Xinxiang 453000, China

Abstract

Electrochemical N2 reduction reaction (NRR) is a promising approach for NH3 production under mild conditions. Herein, the catalytic performance of 3d transition metal (TM) atoms anchored on s-triazine-based g-C3N4 (TM@g-C3N4) in NRR is systematically investigated by density functional theory (DFT) calculations. Among these TM@g-C3N4 systems, the V@g-C3N4, Cr@g-C3N4, Mn@g-C3N4, Fe@g-C3N4, and Co@g-C3N4 monolayers have lower ΔG(*NNH) values, especially the V@g-C3N4 monolayer has the lowest limiting potential of −0.60 V and the corresponding limiting-potential steps are *N2+H++e−=*NNH for both alternating and distal mechanisms. For V@g-C3N4, the transferred charge and spin moment contributed by the anchored V atom activate N2 molecule. The metal conductivity of V@g-C3N4 provides an effective guarantee for charge transfer between adsorbates and V atom during N2 reduction reaction. After N2 adsorption, the p-d orbital hybridization of *N2 and V atoms can provide or receive electrons for the intermediate products, which makes the reduction process follow acceptance-donation mechanism. The results provide an important reference to design high efficiency single atom catalysts (SACs) for N2 reduction.

Funder

The National Natural Science Foundation of China

the Natural Science Foundation of Henan

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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