Related Experiment Video
Updated: May 22, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
DFT calculations of efficient nitric oxide reduction catalysts with metal-free electrocatalysts
Pengfei Ma1, Zhaoyang Wang2, Huijun Kong2
1School of 3D Printing, Xinxiang University, Xinxiang 453003, People's Republic of China.
Abstract:
Electrocatalytic reduction of NO to NH3can be achieved by using regenerated electricity to generate NH3with chemical value. The entire process is environmentally friendly and represents a promising strategy for NO emission reduction. The catalytic efficiency of the electrocatalytic NO reduction reaction (NORR) hinges critically on the design and performance of the electrocatalyst. In this study, through first-principles calculations, a series of catalysts were designed, including P single-atom loaded on multi-N-atom doped graphene (P@NnGran= 0-3) for the NORR catalytic process. Through comprehensive evaluation of key descriptors-binding energy, the adsorption strength of NO, and the free energy barrier of the potential-determining step, P@N2Gra and P@N3Gra were ultimately identified as potential NORR catalysts with excellent catalytic activity. Simulation of the entire pathway revealed that the limiting potentials for the NORR process on P@N2Gra and P@N3Gra were -0.176 V and -0.424 V, respectively. Furthermore, analysis of the density of states, charge difference density and crystal orbital Hamilton population elucidated the electronic origin of their high catalytic activity.Ab initiomolecular dynamics simulations further confirmed the excellent thermodynamic stability. This study provides a theoretical basis for the regulation strategy of non-metal atoms as active centers of electrocatalysts.

