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Tailoring Interlayer Microenvironment of 2D Layered Double Hydroxides for CO2 Reduction with Enhanced C2+ Production

  • Tong Wu
  • , Zihao Wu
  • , Ziqian Shi
  • , Lihua Zhang
  • , Yinbo Zhan
  • , Yilin Dong
  • , Bowei Zhou
  • , Fei Wei
  • , Dongliang Zhang
  • , Yukun Gao
  • , Penggang Yin
  • , Yixin Zhao*
  • , Limin Qi*
  • , Xia Long*
  • *Corresponding author for this work
  • Shanghai Jiao Tong University
  • Peking University
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

Both the physicochemical properties of catalytic material and the structure of loaded catalyst layer (CL) on gas diffusion electrode (GDE) are of crucial importance in determining the conversion efficiency and product selectivity of carbon dioxide reduction reaction (CO2RR). However, the highly reducing reaction condition of CO2RR will lead to the uncontrollable structural and compositional changes of catalysts, making it difficult to tailor surface properties and microstructure of the real active species for favored products. Herein, the interlayer microenvironment of copper-based layered double hydroxides (LDHs) is rationally tuned by a facile ink solvent engineering, which affects both the surface characters and microstructure of CL on GDE, leading to distinct catalytic activity and product selectivity. According to series of in situ and ex situ techniques, the appropriate surface wettability and thickness of porous CL are found to play critical roles in controlling the local CO2 concentration and water dissociation steps that are key for hydrogenation during CO2RR, leading to a high Faradaic efficiency of 75.3% for C2+ products and a partial current density of 275 mA cm−2 at −0.8 V versus RHE. This work provides insights into rational design of efficient electrocatalysts toward CO2RR for multi-carbon generation.

Original languageEnglish
Article number2406906
JournalSmall
Volume21
Issue number1
DOIs
StatePublished - 8 Jan 2025

Keywords

  • CO reduction reaction
  • ink solvent engineering
  • surface wettability
  • thickness of catalyst layer

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