Charge Transfer and Reaction Coordinate Construction based Theoretical Investigation of eNRR and HER on Cuboidal silver phosphate: A Tale of Two Competing Mechanisms
Abstract
We have performed systematic electronic structure calculations based on reaction coordinate construction and charge transfer analysis to explore the demarcation between two-competing mechanism: electrochemical nitrogen reduction reaction (eNRR) and hydrogen evolution reaction (HER). We have employed Density Functional Theory based first-principles calculations to investigate the eNRR and HER on cuboidal silver phosphate Ag3PO4 surface in an acidic medium. For eNRR, we have explored all the three reaction mechanism pathways named distal, alternating and enzymatic, while the adsorption site selectivity has also been envisaged in this work. Among all the possible catalytic sites of Ag3PO4, the Ag site is turned out to be the energetically most favourable for eNRR that suppresses HER activity. The alternating pathway is confirmed to be the best catalytic pathway with a limiting potential of −0.60V, as compared to −1.41V and −2.9V for distal and enzymatic pathways, respectively. The quantitative and qualitative analysis of charge transfer process corresponding to the alternating pathway of eNRR are also being explored from the perspective of Bader charge variation and charge density distribution.