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用于过氧化氢电合成的多孔固体电解质电化学反应器的优化与放大

Optimization and scaling-up of porous solid electrolyte electrochemical reactors for hydrogen peroxide electrosynthesis.

作者信息

Zhao Erzhuo, Zhang Yixin, Zhan Juhong, Xia Guangsen, Yu Gang, Wang Yujue

机构信息

School of Environment, Tsinghua University, Beijing, China.

State Key Joint Laboratory of Environmental Simulation and Pollution Control, Tsinghua University, Beijing, China.

出版信息

Nat Commun. 2025 Apr 4;16(1):3212. doi: 10.1038/s41467-025-58385-2.

Abstract

The recently developed porous solid electrolyte (PSE) reactor for electrosynthesis of hydrogen peroxide (HO) has attracted significant global interest. However, scaling up the PSE reactor for practical applications poses challenges, particularly due to performance decline in enlarged reactors. Here we systematically investigate how factors such as material selection, assembly parameters, flow field patterns, and operating conditions influence HO electrosynthesis in the PSE reactor. Our findings reveal that the performance decline during reactor scale-up is primarily caused by the uneven flow field in the PSE layer. Based on these insights, we optimize the reactor design and develop a 12-unit modular electrode stack PSE reactor with a total electrode area of 1200 cm. The scaled-up reactor maintains efficient HO electrosynthesis without significant performance decline. It operates stably for over 400 h and can produce up to 2.5 kg pure HO (~83 kg 3% HO solutions) per day with considerably lower energy costs (0.2‒0.8 USD/kg HO) than the market prices of HO stocks. This work represents a crucial advancement in the development of PSE reactor technology for practical HO electrosynthesis.

摘要

最近开发的用于电合成过氧化氢(HO)的多孔固体电解质(PSE)反应器引起了全球的广泛关注。然而,将PSE反应器扩大规模用于实际应用面临挑战,特别是由于扩大后的反应器性能下降。在此,我们系统地研究了材料选择、组装参数、流场模式和操作条件等因素如何影响PSE反应器中HO的电合成。我们的研究结果表明,反应器放大过程中的性能下降主要是由PSE层中不均匀的流场引起的。基于这些见解,我们优化了反应器设计,并开发了一种12单元模块化电极堆PSE反应器,总电极面积为1200平方厘米。放大后的反应器保持了高效的HO电合成,且性能没有显著下降。它稳定运行超过400小时,每天可生产高达2.5千克纯HO(约83千克3%的HO溶液),能源成本(0.2 - 0.8美元/千克HO)比市场上HO库存价格低得多。这项工作代表了用于实际HO电合成的PSE反应器技术发展的关键进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/647a/11969008/cf2cbfaab253/41467_2025_58385_Fig1_HTML.jpg

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