4.8 Article

Engineering a conductive network of atomically thin bismuthene with rich defects enables CO2 reduction to formate with industry-compatible current densities and stability

期刊

ENERGY & ENVIRONMENTAL SCIENCE
卷 14, 期 9, 页码 4998-5008

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ee01495a

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资金

  1. National Natural Science Foundation of China (NSFC) [21901246, 21905278]
  2. Natural Science Foundation of Fujian Province [2019J05158, 2020J01116]

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The self-supported large-size three-dimensional porous conductive network of bismuthene shows outstanding performance in the electrochemical CO2 reduction reaction, efficiently producing formate and maintaining high stability under high current density conditions.
The electrochemical CO2 reduction reaction (CO2RR) to value-added and readily collectable liquid products is promising but remains a great challenge due to the lack of efficient and robust electrocatalysts. Herein, a self-supported large-size three-dimensional porous conductive network of bismuthene (Bi-ene-NW) as an efficient superstructured electrocatalytic membrane (ECM) has been pioneeringly assembled, in which the atomically thin Bi-ene with rich edge-site-involved defects is interconnected, highly exposing the active sites. Such ECM can be utilized as an ascendant catalytic cathode, displaying an unprecedented CO2RR performance with near-unity selectivity in a wide potential window and large current density for formate production. Remarkably, when integrated into a gas diffusion electrode (GDE) in a flow cell, Bi-ene-NW was capable of delivering industry-compatible current densities up to 560 mA cm(-2) for formate production. Moreover, it was ultrastable to continuously operate for over 500 h at a high current density without significant activity decay. Such outstanding performance should be inseparable from its abundant accessible sites with high intrinsic activity, multiple interconnected channels and superior conductivity for mass/charge transport. The operando ATR-IR and theoretical calculations further deciphered that the rich defects in the roughened plane edges and in-plane pore edges of Bi-ene are conducive to the *OCHO intermediate stabilization.

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