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The Mechanism of Room-Temperature Ionic-Liquid-Based Electrochemical CO2 Reduction: A Review

机译:室温离子液体基电化学还原CO2的机理研究进展

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Electrochemical CO2 conversion technology is becoming indispensable in the development of a sustainable carbon-based economy. While various types of electrocatalytic systems have been designed, those based on room-temperature ionic liquids (RTILs) have attracted considerable attention because of their high efficiencies and selectivities. Furthermore, it should be possible to develop more advanced electrocatalytic systems for commercial use because target-specific characteristics can be fine-tuned using various combinations of RTIL ions. To achieve this goal, we require a systematic understanding of the role of the RTIL components in electrocatalytic systems, however, their role has not yet been clarified by experiment or theory. Thus, the purpose of this short review is to summarize recent experimental and theoretical mechanistic studies to provide insight into and to develop guidelines for the successful development of new CO2 conversion systems. The results discussed here can be summarized as follows. Complex physical and chemical interactions between the RTIL components and the reaction intermediates, in particular at the electrode surface, are critical for determining the activity and selectivity of the electrocatalytic system, although no single factor dominates. Therefore, more fundamental research is required to understand the physical, chemical, and thermodynamic characteristics of complex RTIL-based electrocatalytic systems. View Full-Text
机译:在可持续的碳基经济发展中,电化学CO2转化技术已变得不可缺少。尽管已设计了各种类型的电催化系统,但基于室温离子液体(RTIL)的电催化系统因其高效和高选择性而备受关注。此外,应该开发出更先进的电催化系统以用于商业用途,因为可以使用RTIL离子的各种组合来微调目标特定的特性。为了实现此目标,我们需要对RTIL组分在电催化系统中的作用有系统的了解,但是,尚未通过实验或理论阐明它们的作用。因此,本篇简短综述的目的是总结最近的实验和理论机理研究,以提供洞察力并为成功开发新的CO2转化系统开发指南。这里讨论的结果可以总结如下。尽管没有单个因素起主导作用,但RTIL组分与反应中间体之间(尤其是在电极表面)之间复杂的物理和化学相互作用对于确定电催化系统的活性和选择性至关重要。因此,需要更基础的研究来理解复杂的基于RTIL的电催化系统的物理,化学和热力学特性。查看全文

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