Engineering redox-active electrochemically mediated carbon dioxide capture systems

Michael Massen-Hane, Kyle M. Diederichsen, T. Alan Hatton
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Abstract

With ever-increasing atmospheric carbon dioxide concentrations and commitments to limit global temperatures to less than 1.5 °C above pre-industrial levels, the need for versatile, low-cost carbon dioxide capture technologies is paramount. Electrochemically mediated carbon dioxide separation systems promise low energetics, modular scalability and ease of implementation, with direct integration to renewable energy for net-negative carbon dioxide operations. For these systems to be cost-competitive, key factors around their operation, stability and scaling need to be addressed. Energy penalties associated with redox-active species transport, gas transport and bubble formation limit the volumetric productivity and scaling potential due to their cost and footprint. Here we highlight the importance of engineering approaches towards enhancing the performance of redox-active electrochemically mediated carbon dioxide capture systems to enable their widespread implementation. This Perspective discusses electrochemically mediated carbon dioxide capture systems, which can offer lower energetics than standard thermal methods, with modular scalability. New integrated configurations can further reduce costs and improve unit productivity, while further engineering of existing cell designs will enable more rapid implementation.

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以电化学为介质的氧化还原活性二氧化碳捕获系统的工程设计
随着大气中二氧化碳浓度的不断增加,以及将全球气温限制在比工业化前水平高 1.5 ℃ 以下的承诺,对多功能、低成本二氧化碳捕集技术的需求变得至关重要。电化学介导的二氧化碳分离系统具有低能耗、模块化可扩展性和易于实施的特点,可与可再生能源直接整合,实现二氧化碳净负值操作。要使这些系统在成本上具有竞争力,就必须解决与其运行、稳定性和扩展性有关的关键因素。与氧化还原活性物种传输、气体传输和气泡形成相关的能量损耗,因其成本和占地面积而限制了体积生产率和扩展潜力。在此,我们强调工程方法对提高氧化还原活性电化学介导的二氧化碳捕集系统性能的重要性,以促进其广泛应用。本 "视角 "将讨论电化学介导的二氧化碳捕集系统,该系统的能耗低于标准热法,并具有模块化可扩展性。新的集成配置可进一步降低成本并提高单位生产率,而对现有电池设计的进一步工程化将使其更快地投入使用。
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