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离聚物中间相层可实现阴离子交换膜水电解槽在低pH值下的高效运行。

Ionomer Interphase Layers Enable Efficient Anion-Exchange Membrane Water Electrolyzer Operation at Low pH.

作者信息

Thévenot Arthur P L, Reiter Thilo, Ngo Thanh Trung, Titze Lisa, Cazzaniga Cristina, Dionigi Fabio, Strasser Peter

机构信息

Department of Chemistry, Chemical Engineering Department, Technical University Berlin, 10623 Berlin, Germany.

Industrie De Nora S.p.A.,Via Bistolfi 35, 20134 Milan, Italy.

出版信息

Energy Fuels. 2025 Apr 23;39(17):8203-8210. doi: 10.1021/acs.energyfuels.5c00396. eCollection 2025 May 1.

Abstract

Anion-exchange membrane water electrolysis (AEMWE) is an emerging green hydrogen technology. As of today, AEM water electrolyzers operate using highly alkaline electrolytes. Design strategies to operate AEMWE systems sustainably under lower alkalinity toward pure water conditions have become a scientific priority. Under low-alkaline conditions, the alkaline-exchange ionomer (AEI) is, in addition to the AEM, the key ion-transport medium inside the AEMWE cell. While prior work addressed ion transport and the ionomer-catalyst interface at the anode in low-pH AEMWEs, a thorough investigation at the cathode side, including different AEI architectures, received limited attention. In this contribution, we explore the impact of AEI architectures in AEMWE cathodes using an ionomer and a membrane that are both commercially available. We demonstrate separate ionomer top layer (ITL) interphases placed between the cathode catalyst layer and the membrane as the most effective strategy toward high cell performance under low pH feeding. ITLs enabled performance benefits even at pH 14, which leads us to perceive their mechanistic role as an ion-transport buffer enabling ready ion migration from the cathode to the anode. Our insights on the ITL architecture will aid the design of AEMWE cells for sustained efficient operation under pure water feeds.

摘要

阴离子交换膜水电解(AEMWE)是一项新兴的绿色制氢技术。截至目前,AEM水电解槽使用高碱性电解质运行。制定在较低碱度直至纯水条件下可持续运行AEMWE系统的设计策略已成为一项科学重点。在低碱性条件下,除了AEM外,碱性交换离聚物(AEI)是AEMWE电池内部关键的离子传输介质。虽然之前的工作涉及低pH值AEMWE阳极处的离子传输和离聚物-催化剂界面,但阴极侧的深入研究,包括不同的AEI结构,受到的关注有限。在本论文中,我们使用市售的离聚物和膜来探究AEI结构对AEMWE阴极的影响。我们证明,在阴极催化剂层和膜之间设置单独的离聚物顶层(ITL)界面,是在低pH值进料条件下实现高电池性能的最有效策略。即使在pH值为14时,ITL也能带来性能提升,这使我们认识到它们的作用机制是作为离子传输缓冲层,使离子能够从阴极顺利迁移到阳极。我们对ITL结构的见解将有助于设计在纯水进料条件下持续高效运行的AEMWE电池。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fcd/12051452/a11d4c2d51a9/ef5c00396_0001.jpg

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