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March 14, 2026EcoEnergy3 citationsOpen Access

Upcycling Expired Bismuth‐Drugs as Low‐Cost Practical Precatalysts for Sustainable Multi‐Scenario Formate Electrosynthesis

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JXJie XiaoFujian Institute of Research on the Structure of MatterDMDong‐Dong MaChinese Academy of SciencesWWWenbo WeiZhejiang Sci-Tech University

Key Points

  • The research aims to evaluate the potential of expired bismuth drugs as precatalysts in formate electrosynthesis to promote sustainability.
  • Converted expired bismuth drugs into precatalysts without pretreatment.
  • Assessed catalytic performance in a flow cell system.
  • Evaluated the impact of different water qualities.
  • Tested tandem electro-chemo synthesis using a formate-containing electrolyte.
  • Achieved Faradaic efficiency over 90% for carbon dioxide conversion to formate.
  • Demonstrated consistent superior catalytic performance of expired Bi-drugs compared to benchmarks.
  • Obtained an 85% yield of benzimidazole from tandem electro-chemo synthesis.

Abstract

ABSTRACT The pressing challenges of resource shortage and environmental issue demand innovative technologies that matching circular economies. Here, we proposed an integrated strategy that enables direct waste reuse and sustainable electrosynthesis by converting expired bismuth (Bi)‐drugs into impressive precatalysts, achieving the efficient electro‐upcycling of carbon dioxide to formate in a universal electrolyzer with a stabilized Faradaic efficiency exceeding 90%. Systematically, we evaluated a range of expired Bi‐drugs without any pretreatment, confirming consistently superior catalytic performance comparable to the benchmark in a flow cell system. This finding provides crucial experimental evidence for the feasibility of nonsorted direct utilization of expired Bi‐drugs. Furthermore, to broaden the scope toward practical application, we also assessed the impact of water quality and the feasibility of tandem electro‐chemo synthesis by employing the formate‐containing electrolyte, which, for instance, allowed for the value‐added synthesis of benzimidazole in a yield of 85%. This work establishes a scalable sustainable paradigm for interdisciplinary, integrating waste upcycling, energy‐efficient synthesis, and up–downstream resource optimization.

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Cite This Study

Xiao et al. (2026) studied this question.

synapsesocial.com/papers/69b4fb9db39f7826a300bfbdhttps://doi.org/10.1002/ece2.70048
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