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December 14, 2025Carbon and Hydrogen3 citationsOpen Access

Engineering Grain Boundaries of Cu‐Based Electrocatalysts for CO 2 Reduction to Multi‐Carbon Products With High Selectivity and Durability

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YZYu‐Xiao ZhangCWChen‐Chen WengJZJuan Zhang

Key Points

  • This research aims to improve the stability and selectivity of Cu-based catalysts for CO2 reduction by manipulating grain boundaries.
  • Developed Cu2O polycrystalline catalyst using grain boundary engineering (GBE).
  • Varying concentrations of metal source and precipitant to manipulate grain size and boundary density.
  • Employed in situ and online characterization techniques to assess the catalysts.
  • Cu2O catalyst achieved >80% selectivity towards multi-carbon products under 200 mA cm−2.
  • Demonstrated promising stability (~100 hours) under industry-related conditions.
  • Identified a volcano-like relationship between grain size and ECR stability.

Abstract

ABSTRACT The low stability of copper‐based catalysts caused by dynamic reconstruction during the electrocatalytic CO 2 reduction (ECR) process restricts their practical applications. Here, we developed a high performance Cu 2 O polycrystalline catalyst for the ECR, featuring enhanced stability and selectivity toward multi‐carbon products. This is achieved through targeted grain boundary engineering (GBE) where the grain size and boundary density of the catalyst were manipulated via varying the concentrations of metal source and precipitant. The as‐prepared catalyst with an optimal grain size and high boundary density demonstrated an excellent selectivity (> 80%) toward multi‐carbon products under ampere‐level current density and a promising stability (∼100 h) under industry‐related conditions (200 mA cm −2 ). By employing in situ and online characterization techniques, it was found that Cu 2 O catalyst with moderate grain sizes exhibited the lowest dissolution and reconstruction rates during ECR resulting in significantly enhanced stability. Furthermore, a volcano‐like relationship between the grain size and ECR stability was identified. The beneficial impacts of concave grain boundaries on the stability of Cu‐based catalysts were evidenced, and insights into the molecular interactions at play as well as the origin of the observed volcano‐like relationship were obtained by density functional theory (DFT) calculations.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/6941aaa70f5af7fd17df4b39https://doi.org/10.1002/cbh2.70030
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