高压电化学:脱碳的新前沿

EES catalysis Pub Date : 2023-11-28 DOI:10.1039/D3EY00284E
Nishithan C. Kani, Samuel Olusegun, Rohit Chauhan, Joseph A. Gauthier and Meenesh R. Singh
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引用次数: 0

摘要

商品化学品的化学制造占全球碳排放量的约24%。鉴于经济发展,预计需求将增加,因此迫切需要制定脱碳战略。由于气相反应物/生成物的存在,在相关电流密度下的传质限制阻碍了电化学合成路线。从这个角度来看,我们研究了高压电化学,并表明压力可以在最小的能量和资本支出损失的情况下改善传质、选择性和活性。我们说明了压力对Pourbaix图(表面和体积)和电化学界面的影响。利用勒夏特列原理,我们通过调整平衡势证明了高压下动力学的改进。我们详细介绍了高压电化学的现有反应器/工具以及基础研究所需的未来工作。我们认为,在分散生产中,高压反应器的差异资本成本是微不足道的。这项工作将通过为商品化学品的电化学合成开辟新的途径,促进化学工业脱碳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-pressure electrochemistry: a new frontier in decarbonization†

High-pressure electrochemistry: a new frontier in decarbonization†

The chemical manufacturing of commodity chemicals, responsible for approximately 24% of global carbon emissions, poses a critical environmental challenge. With escalating demand due to economic development, urgent decarbonization strategies are imperative. Traditional electrochemical synthesis encounters hindrances, especially mass transfer limitations at relevant current densities, primarily attributed to gas phase reactants and products. In this Perspective, we explore the viability of high-pressure electrochemistry as a transformative solution. Our analysis reveals that applying pressure can overcome mass transfer limitations, enhance selectivity, and improve overall activity, all while minimizing energy consumption and capital expenditure for distributed production processes. We shed light on the influence of pressure on Pourbaix diagrams, electric double layer, electrolyte activity, conductivity, electrostriction-enhanced selectivities, catalyst activity, and stability. Additionally, insights are provided into the design and operation of existing reactors and tools for high-pressure electrochemistry, along with the imperative for future fundamental studies. In the context of decentralized production, we argue that the marginal differential capital costs associated with high-pressure reactors become inconsequential. Ultimately, our work seeks to pave the way for the decarbonization of the chemical industry by establishing innovative pathways for the electrochemical synthesis of commodity chemicals, presenting high-pressure electrochemical synthesis as a potential paradigm shift in this transformative journey.

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