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加速酸性CO电还原:超越催化剂的策略。

Accelerating acidic CO electroreduction: strategies beyond catalysts.

作者信息

Deng Bangwei, Sun Daming, Zhao Xueyang, Wang Lili, Ma Feiyu, Li Yizhao, Dong Fan

机构信息

Huzhou Key Laboratory of Smart and Clean Energy, Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China Huzhou 313001 China

CMA Key Open Laboratory of Transforming Climate Resources to Economy Chongqing 401147 China.

出版信息

Chem Sci. 2024 Sep 3;15(37):15087-108. doi: 10.1039/d4sc04283b.

DOI:10.1039/d4sc04283b
PMID:39263663
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11382547/
Abstract

Carbon dioxide electrochemical reduction (CORR) into high-value-added chemicals offers an alternative pathway toward achieving carbon neutrality. However, in conventional neutral or alkaline electrolyte systems, a significant portion of CO is converted into (bi)carbonate due to the thermodynamically favorable acid-base neutralization reaction between CO and hydroxide ions. This results in the single-pass carbon efficiency (SPCE) being theoretically capped at 50%, presenting challenges for practical applications. Acidic CORR can completely circumvent the carbonate issue and theoretically achieve 100% SPCE, garnering substantial attention from researchers in recent years. Nevertheless, acidic CORR currently lags behind traditional neutral/alkaline systems in terms of product selectivity, stability, and energy efficiency, primarily because the abundance of H ions exacerbates the hydrogen evolution reaction (HER). Encouragingly, significant breakthroughs have been made to address these challenges, with numerous studies indicating that the regulation of the local catalytic environment may be more crucial than the catalyst itself. In this review, we will discuss the main challenges and latest strategies for acidic CORR, focusing on three key aspects beyond the catalyst: electrolyte regulation, local catalytic environment modification, and novel designs of gas diffusion electrodes (GDEs)/electrolyzers. We will also conclude the current advancement for acidic CORR and provide an outlook, with the hope that this technology will contribute to achieving carbon neutrality and advance towards practical application.

摘要

将二氧化碳电化学还原(CORR)为高附加值化学品为实现碳中和提供了一条替代途径。然而,在传统的中性或碱性电解质体系中,由于CO与氢氧根离子之间存在热力学上有利的酸碱中和反应,相当一部分CO会转化为(碳酸氢)盐。这导致单程碳效率(SPCE)理论上上限为50%,给实际应用带来了挑战。酸性CORR可以完全规避碳酸盐问题,理论上可实现100%的SPCE,近年来受到了研究人员的广泛关注。然而,目前酸性CORR在产物选择性、稳定性和能量效率方面落后于传统的中性/碱性体系,主要是因为大量的H离子加剧了析氢反应(HER)。令人鼓舞的是,在应对这些挑战方面已经取得了重大突破,许多研究表明,调节局部催化环境可能比催化剂本身更为关键。在这篇综述中,我们将讨论酸性CORR的主要挑战和最新策略,重点关注催化剂之外的三个关键方面:电解质调节、局部催化环境改性以及气体扩散电极(GDE)/电解槽的新颖设计。我们还将总结酸性CORR的当前进展并给出展望,希望这项技术将有助于实现碳中和并朝着实际应用迈进。

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本文引用的文献

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Addressing the Carbonate Issue: Electrocatalysts for Acidic CO Reduction Reaction.解决碳酸盐问题:用于酸性CO还原反应的电催化剂。
Adv Mater. 2025 Jan;37(2):e2312894. doi: 10.1002/adma.202312894. Epub 2024 May 17.
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Switching CO Electroreduction toward Ethanol by Delocalization State-Tuned Bond Cleavage.通过离域态调控的键裂解将一氧化碳电还原转换为乙醇
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Reaction Environment Regulation for Electrocatalytic CO Reduction in Acids.酸性环境中电催化CO还原的反应环境调控
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Tandem Acidic CO Electrolysis Coupled with Syngas Fermentation: A Two-Stage Process for Producing Medium-Chain Fatty Acids.串联酸性CO电解与合成气发酵耦合:一种生产中链脂肪酸的两步法工艺。
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CO Electrolyzers.一氧化碳电解槽
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Structuring Cu Membrane Electrode for Maximizing Ethylene Yield from CO Electroreduction.构建铜膜电极以最大化二氧化碳电还原制乙烯的产率。
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