Quantitative Analysis of Formate Production from Plasma-Assisted Electrochemical Reduction of CO2 on Pd-Based Catalysts

Jie Hu, Fuqiang Liu
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Abstract

The escalating levels of atmospheric CO2, primarily attributed to human activities, underscore the urgent need for innovative solutions to mitigate environmental challenges. This study delves into the electrochemical reduction of CO2 as a promising avenue for sustainable carbon capture and utilization. Focused on the formation of formate (HCOO−/HCOOH), a high-value product, the research explores the integration of nonthermal plasma (NTP) with electrochemical processes—an approach rarely studied in existing literature. A comprehensive investigation involves varying parameters such as plasma discharging voltage, carrier gas, discharging mode, electrolysis voltage, polarity, and plasma type. The electrochemical tests employ a 10 wt.% Pd/C catalyst, and formate production is quantitatively analyzed using NMR. Results reveal that NTP significantly enhances CO2 reduction, with key factors influencing formate yield elucidated. The study reveals the complexity of CO2 electrochemical reduction, providing novel insights into the synergistic effects of NTP. These findings contribute to advancing sustainable technologies for CO2 utilization, paving the way for more efficient and environmentally friendly processes in the pursuit of a carbon-neutral future.
等离子体辅助电化学还原 Pd 基催化剂上的 CO2 生成甲酸盐的定量分析
大气中二氧化碳含量的不断攀升主要归因于人类活动,这突出表明迫切需要创新的解决方案来缓解环境挑战。本研究深入探讨了二氧化碳的电化学还原,这是实现可持续碳捕获和利用的一条大有可为的途径。研究重点是甲酸盐(HCOO-/HCOOH)这一高价值产品的形成,探索了非热等离子体(NTP)与电化学过程的整合--这是现有文献中很少研究的一种方法。全面的研究涉及改变等离子体放电电压、载气、放电模式、电解电压、极性和等离子体类型等参数。电化学试验采用了 10 wt.% Pd/C 催化剂,并使用核磁共振对甲酸酯的生成进行了定量分析。结果表明,NTP 能显著提高二氧化碳的还原能力,并阐明了影响甲酸盐产量的关键因素。该研究揭示了二氧化碳电化学还原的复杂性,为了解 NTP 的协同效应提供了新的视角。这些发现有助于推进二氧化碳利用的可持续技术,为实现碳中和的未来铺平道路。
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