English

Efficient Electrochemical CO2 Reduction Reaction over Cu-decorated Biphenylene

Materials Science 2024-10-28 v2

Abstract

Developing efficient electrocatalysts for CO2_2 reduction into value-added products is crucial for the green economy. Inspired by the recent synthesis of Biphenylene (BPH), we have systematically investigated pristine, defective, and Cu-decorated BPH as an electrocatalyst for the CO2_2 reduction reactions (CRR). Our first-principles calculations show the CO2_2 molecules weakly interact with the pristine BPH surface while defective BPH facilitates the CO2_2 adsorption with a binding energy (EbE_b) of -3.22 eV, indicating the detrimental process for the CRR on the surface of both systems. Furthermore, we have investigated the binding energy and kinetic stability of Cu-decorated BPH as a single-atom-catalyst (SAC). The molecular dynamics simulations confirm the kinetic stability, revealing that the Cu-atom avoids agglomeration under low metal dispersal conditions. The CO2_2 molecule gets adsorbed horizontally on the Cu-BPH surface with EbE_b of -0.52 eV. The CRR mechanism is investigated using two pathways beginning with two different initial intermediate states, formate (OCOH\mathrm{^*OCOH}) and the carboxylic (COOH\mathrm{^*COOH}) pathways. The formate pathway confirms the conversion of OCOH\mathrm{^*OCOH} to HCOOH\mathrm{^*HCOOH} with the rate-limiting potential (ULU_L) of 0.57 eV for the production of HCOOH, while for the carboxylic pathway, the conversion of COH\mathrm{^*COH} to CHOH\mathrm{^*CHOH} has ULU_L of 0.49 eV for the production of CH3_3OH. We have also investigated the effect of protons using charged hydrogen pseudopotential, which hints towards the possible formation of CH3_3OH as fuel. Our findings propose Cu-BPH as an efficient single-atom catalyst for CO2_2 conversion compared to the well-known Cu metal.

Keywords

Cite

@article{arxiv.2404.10409,
  title  = {Efficient Electrochemical CO2 Reduction Reaction over Cu-decorated Biphenylene},
  author = {Radha N Somaiya and Muhammad Sajjad and Nirpendra Singh and Aftab Alam},
  journal= {arXiv preprint arXiv:2404.10409},
  year   = {2024}
}

Comments

9 pages, 6 figures, 8 figures in Supplementary Information