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通过导热网络提高氢氧化物交换膜的原位稳定性以实现持久的水电解。

Promoting in-situ stability of hydroxide exchange membranes by thermally conductive network for durable water electrolysis.

作者信息

Wang Wei, Guo Ruixiang, Zheng Aodi, Jin Xiaorui, Jia Xiongjie, Ren Zhiwei, Han Yangkai, Zhang Lifeng, Zhai Yeming, Liu Xiaofen, Jiang Haoran, Zhao Yun, Zhou Kai-Ge, Wu Meiling, Jiang Zhongyi

机构信息

Institute of Molecular Plus, Department of Chemistry, Tianjin University, Tianjin, China.

Haihe Laboratory of Sustainable Chemical Transformations, Tianjin, China.

出版信息

Nat Commun. 2025 Jan 22;16(1):934. doi: 10.1038/s41467-025-56262-6.

Abstract

Hydroxide exchange membrane (HEM) water electrolysis is promising for green hydrogen production due to its low cost and excellent performance. However, HEM often has insufficient stability in strong alkaline solutions, particularly under in-situ electrolysis operation conditions, hindering its commercialization. In this study, we discover that the in-situ stability of HEM is primarily impaired by the locally accumulated heat in HEM due to its low thermal conductivity. Accordingly, we propose highly thermally conductive HEMs with an efficient three-dimensional (3D) thermal diffusion network to promote the in-situ stability of HEM for water electrolysis. Based on the 3D heat conductive network, the thermal conductivity of polymeric HEM is boosted by 32 times and thereby reduce the HEM temperature by up to 4.9 °C in a water electrolyzer at the current density of 1 A cm. Thus, the thermally conductive HEM exhibits negligible degradation after 20,000 start/stop cycles and reduces the degradation rate by 6 times compared to the pure polymeric HEM in a water electrolyzer. This study manifests the significance of thermal conductivity of HEM on the durability of water electrolysis, which provides guidelines on the rational design of highly durable HEMs in practical operation conditions for water electrolysis, fuel cells, and beyond.

摘要

氢氧化物交换膜(HEM)水电解因其低成本和优异性能而在绿色制氢方面颇具前景。然而,HEM在强碱性溶液中通常稳定性不足,尤其是在原位电解操作条件下,这阻碍了其商业化。在本研究中,我们发现HEM的原位稳定性主要因热导率低导致其局部热量积聚而受损。因此,我们提出具有高效三维(3D)热扩散网络的高导热性HEM,以提高HEM用于水电解的原位稳定性。基于3D导热网络,聚合物HEM的热导率提高了32倍,从而在电流密度为1 A/cm²的水电解槽中使HEM温度降低了4.9°C。因此,导热性HEM在20,000次启停循环后降解可忽略不计,与水电解槽中的纯聚合物HEM相比,降解速率降低了6倍。本研究表明HEM的热导率对水电解耐久性的重要性,为在水电解、燃料电池及其他实际操作条件下合理设计高耐久性HEM提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a8e/11754833/0d4e22d0ba90/41467_2025_56262_Fig1_HTML.jpg

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