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Covalent Elaboration of Confined Surfaces Steers C―C Coupling Pathway for Selective Electrochemical CO2 Reduction at Ampere-Level

  • Simeng Li
  • , Mingzi Sun
  • , Kai Zhang
  • , Xin Cai
  • , Yanpeng Chen
  • , Chao Yang
  • , Zhi Yang
  • , Xing Tang
  • , Bolong Huang*
  • , Shihe Yang*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Microenvironmental engineering of electrocatalysts is pivotal for directing reaction pathways and stabilizing key intermediates in CO2 reduction reaction (CO2RR) to multicarbon products, but it has yet to meet the industrial requirement for selectively producing a most desired product, such as ethylene or ethanol, at a steady above-ampere current level. Herein, a topotactic conversion cum covalent functionalization strategy is invoked to craft a catalyst with confined and modulated surfaces that can bias the reaction heavily for ethylene production with a 22-fold boost in the ethylene/ethanol ratio. The well-tuned covalent structural motif of ─Si─O─Cu─ on PDMS-Cu2O/C dramatically elevates the C2H4-forming activity with a faradaic efficiency reaching up to 71% and a high partial current density of 513.6 mA cm−2Operando infrared spectroscopy and density functional theory calculations unveil the ultralow coordination number and the upshifted d-band center. Notably, modulating the d-band center with the covalently elaborated surfaces allows control of the adsorption energies of CHO* and other intermediates along the ethylene path, largely lowering energy barriers for the key steps, particularly the formation of CH2CHO*. This work sheds light on the microenvironment modulation at the surface bonding to mesoscopic scales to precisely control catalytic processes and steer reaction pathways toward the target product. © 2025 Wiley-VCH GmbH
Original languageEnglish
Article numbere202508366
JournalAngewandte Chemie International Edition
Volume64
Issue number30
Online published24 May 2025
DOIs
Publication statusPublished - 21 Jul 2025

Funding

This work was financially supported by the Natural Science Foundation of China (21972006 and U2001217), the Shenzhen Science and Technology Innovation Commission (KCXFZ20201221173604012 and JCYJ20220531090807017), the China Postdoctoral Science Foundation (2024M760115), the Shenzhen Peacock Plan (KQTD2016053015544057), the Shenzhen-Hong Kong Innovation Circle United Research Project (SGLH20180622092406130), the Research Grant Council of Hong Kong (15304023, 15304724, and C1003-23Y), the National Natural Science Foundation of China/Research Grant Council of Hong Kong Joint Research Scheme (N_PolyU502/21), the National Natural Science Foundation of China/Research Grants Council of Hong Kong Collaborative Research Scheme (CRS_PolyU504/22), and the Natural Science Foundation of Guangdong Province (2023A1515012219 and 2023A1515030131).

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 9 - Industry, Innovation, and Infrastructure
    SDG 9 Industry, Innovation, and Infrastructure
  2. SDG 13 - Climate Action
    SDG 13 Climate Action

Research Keywords

  • C2H4 production
  • Covalent modification
  • Electrochemical CO2 reduction
  • Gasphilic
  • Hierarchically porous

RGC Funding Information

  • RGC-funded

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