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March 10, 2026Transactions of Materials Research0 citationsOpen Access

Radiation-Induced Divergent Structural Evolution of Cu2(OH)2CO3 and Its Impact on CO2 Electroreduction

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JHJihua HuangMYMingfei YuLLLiuyi Li

Key Points

  • The central aim is to investigate how radiation influences the structural evolution and performance of the Cu2(OH)2CO3 electrocatalyst during CO2 reduction.
  • Utilized controlled hydrogen plasma and X-ray irradiation to simulate extraterrestrial environments.
  • Conducted electrochemical CO2 reduction experiments to evaluate product selectivity and Faradaic efficiency.
  • Performed detailed structural analysis to assess changes in the electrocatalyst's composition.
  • Hydrogen plasma irradiation decreased ethylene production and increased formic acid selectivity during CO2 reduction.
  • X-ray irradiation reduced ethylene Faradaic efficiency while increasing CO evolution.
  • Structural changes included the reduction of Cu 2+ to Cu + and decomposition of Cu2(OH)2CO3 into Cu(OH)2 species.

Abstract

The electrochemical conversion of CO 2 into O 2 and multi-carbon products is essential for sustaining life and meeting material demands in deep-space exploration, yet the influence of cosmic radiation on electrocatalyst stability remains poorly understood. Herein, we report the radiation-induced structural evolution and associated catalytic CO 2 reduction decay of a Cu 2 (OH) 2 CO 3 electrocatalyst under simulated extraterrestrial environments using controlled hydrogen plasma and X-ray irradiation. Our findings demonstrate that hydrogen plasma irradiation markedly suppresses ethylene production during CO 2 reduction, shifting product selectivity toward formic acid, whereas X-ray irradiation also lowers the ethylene Faradaic efficiency with increasing CO evolution. Detailed structural analysis reveals that hydrogen plasma reduces surface Cu 2+ to Cu + , resulting in the formation of Cu 2 O species, while X-ray irradiation induces partial decomposition of Cu 2 (OH) 2 CO 3 into Cu(OH) 2 species. These distinct structural evolution pathways elucidate the underlying deactivation mechanisms and highlight the importance of designing radiation-resistant electrocatalytic systems for sustainable space exploration.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69af949670916d39fea4b97dhttps://doi.org/10.1016/j.tramat.2026.100205
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