电化学CO2转化催化剂:材料可持续性的观点。

Npj materials sustainability Pub Date : 2025-01-01 Epub Date: 2025-06-30 DOI:10.1038/s44296-025-00065-9
Chenyang Wang, Hung Lai, Hugh Warkentin, Cao-Thang Dinh, Qian Zhang
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引用次数: 0

摘要

二氧化碳的电化学还原(eCO2R)通过将二氧化碳转化为增值化学品和燃料,为应对气候变化提供了一条有希望的途径。该技术的一个关键方面是催化剂材料的选择,它直接影响到该工艺的选择性、稳定性和可持续性。在这里,我们介绍了一种简化的供应风险评估,并结合了与eCO2R产品中使用的各种催化剂(包括甲酸盐、一氧化碳、乙烯和乙醇)相关的生命周期环境影响,为催化剂的可持续性评估提供了一个全面的视角。我们比较了超过68个使用各种金属基催化剂的eCO2R案例研究。我们的研究结果表明,用于甲酸酯生产的铋基催化剂具有最高的供应风险和环境负担,而锡基催化剂总体上具有更好的耐久性,并且可持续性问题要低得多。乙烯转化用铜基催化剂的供应风险较低且较为集中,而乙醇转化用铜基催化剂的供应风险较为分散。我们的研究结果进一步证实,提高催化剂的性能,尤其是稳定性,可以大大减轻供应风险和环境影响。这凸显了迫切需要标准化的方法来评估催化剂的稳定性,以及使用材料和系统方法进一步提高催化剂稳定性的新策略。我们呼吁加强跨部门合作,进一步将临界性和可持续性评估框架与更细粒度的数据集和动态时空表征相结合,以不断改进eCO2R催化剂的生态设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Catalysts for electrochemical CO<sub>2</sub> conversion: material sustainability perspective.

Catalysts for electrochemical CO<sub>2</sub> conversion: material sustainability perspective.

Catalysts for electrochemical CO<sub>2</sub> conversion: material sustainability perspective.

Catalysts for electrochemical CO2 conversion: material sustainability perspective.

The electrochemical reduction of CO2 (eCO2R) presents a promising pathway for addressing climate change by converting CO2 into value-added chemicals and fuels. A crucial aspect of this technology is the choice of catalyst materials, which directly influences the selectivity, stability and sustainability of the process. Here we introduce a streamlined supply risk assessment coupled with life-cycle environmental impact associated with various catalysts used in eCO2R for products, including formate, carbon monoxide, ethylene, and ethanol to provide a well-rounded perspective for catalysts' sustainability assessment. We compare more than 68 case studies in eCO2R using various metal-based catalysts. Our results show that Bi-based catalysts for formate production have the highest supply risk and environmental burdens, while Sn-based catalysts show overall better durability and much lower sustainability concerns. Copper-based catalysts' supply risk for ethylene conversion is lower and more concentrated, whereas the supply risk for ethanol conversion is more dispersed. Our findings further confirm that improving catalyst performance-especially the stability-can substantially mitigate both supply risks and environmental impacts. This highlights the urgent need for standardized methodologies to assess catalyst stability and novel strategies to further improve catalyst stability using both material and system approaches. We call for stronger cross-sector collaboration to further integrate criticality and sustainability assessment frameworks with more granular datasets and dynamic spatial and temporal representation, for continuous eco-design improvement of eCO2R catalysts.

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