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Updated: Sep 17, 2025

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Morphology Dependent N2 Reduction on Cu2O: Combined Experimental and Computational Study for Efficient Ammonia
Sourav Paul1,2, Amal Gain1, Ashadul Adalder1
1Department of Industrial Chemistry & Applied Chemistry, Swami Vivekananda Research Centre, Ramakrishna Mission Vidyamandira, Belur Math, Howrah, 711202, India.
Abstract:
Tailoring morphology to alter catalyst performance offers a promising approach to enhance electrocatalytic nitrogen reduction reaction (NRR) for ammonia electrosynthesis. In this work, the structure-dependent performance of Cu2O nanocrystals with distinct cubic and octahedral morphologies is investigated. Experimental results demonstrate the structure-dependent activity, wherein Cu2O with nanooctahedral morphology shows enhanced NRR performance achieving NH3 yield of 182.1 µg h-1 mgcat -1 and Faradaic efficiency (FE) of 35.8% at -0.5 V versus RHE, surpassing its cubic counterpart. To gain mechanistic insights, density functional theory calculations are performed with Hubbard correction (DFT + U). The results indicate thermodynamically favorable nitrogen reduction pathway on the exposed (111) facets of Cu2O. Furthermore, charge transfer analysis provides insights into the redistribution of electron density during NRR. The synergy between experimental results and theoretical insights highlights the importance of morphological tuning in designing efficient Cu2O-based catalysts for electrocatalytic ammonia synthesis.
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