• Media type: E-Article
  • Title: Boosting Electrochemical Carbon Dioxide Reduction on Atomically Dispersed Nickel Catalyst
  • Contributor: Hao, Qi [Author]; Liu, Dong-Xue [Author]; Deng, Ruiping [Author]; Zhong, Hai-Xia [Author]
  • Published: Lausanne: Frontiers Media, [2024]
  • Published in: Frontiers in Chemistry ; 9, (2021)
  • Language: English
  • DOI: 10.3389/fchem.2021.837580
  • Keywords: Nickelcluster und einzelne Atome ; ligand-mediated ; atomare Dispersion ; atomic dispersion ; katalytische Nickel-Stickstoff-Stellen ; ligandenvermittelt ; nickel clusters and single atoms ; carbon dioxide reduction ; Kohlendioxid-Reduktion ; nickel-nitrogen catalytic sites
  • Origination:
  • Footnote:
  • Description: Single-atom catalysts (SACs) with metal–nitrogen (M–N) sites are one of the most promising electrocatalysts for electrochemical carbon dioxide reduction (ECO₂R). However, challenges in simultaneously enhancing the activity and selectivity greatly limit the efficiency of ECO₂R due to the improper interaction of reactants/intermediates on these catalytic sites. Herein, we report a carbon-based nickel (Ni) cluster catalyst containing both single-atom and cluster sites (NiNx-T, T = 500–800) through a ligandmediated method and realize a highly active and selective electrocatalytic CO₂R process. The catalytic performance can be regulated by the dispersion of Ni–N species via controlling the pyrolysis condition. Benefitting from the synergistic effect of pyrrolicnitrogen coordinated Ni single-atom and cluster sites, NiNx-600 exhibits a satisfying catalytic performance, including a high partial current density of 61.85 mA cm⁻² and a high turnover frequency (TOF) of 7,291 h⁻¹ at −1.2 V vs. RHE, and almost 100% selectivity toward carbon monoxide (CO) production, as well as good stability under 10 h of continuous electrolysis. This work discloses the significant role of regulating the coordination environment of the transition metal sites and the synergistic effect between the isolated single-site and cluster site in enhancing the ECO₂R performance.
  • Access State: Open Access
  • Rights information: Attribution (CC BY)