电解质
材料科学
质子
磷酸
电化学
电化学窗口
化学工程
膜
质子输运
无机化学
离子电导率
电极
化学
物理化学
生物化学
物理
量子力学
工程类
冶金
作者
Shitong Wang,Heng Jiang,Yanhao Dong,David T. Clarkson,He Zhu,Charles Settens,Yang Ren,Thanh Nguyen,Fei Han,Weiwei Fan,So Yeon Kim,Jianan Zhang,Weimin Xue,Sean K. Sandstrom,Guiyin Xu,Emre Tekoğlu,Mingda Li,Sili Deng,Qi Liu,Steve Greenbaum,Xiulei Ji,Tao Gao,Ju Li
标识
DOI:10.1002/adma.202202063
摘要
Proton conduction underlies many important electrochemical technologies. A family of new proton electrolytes is reported: acid-in-clay electrolyte (AiCE) prepared by integrating fast proton carriers in a natural phyllosilicate clay network, which can be made into thin-film (tens of micrometers) fluid-impervious membranes. The chosen example systems (sepiolite-phosphoric acid) rank top among the solid proton conductors in terms of proton conductivities (15 mS cm-1 at 25 °C, 0.023 mS cm-1 at -82 °C), electrochemical stability window (3.35 V), and reduced chemical reactivity. A proton battery is assembled using AiCE as the solid electrolyte membrane. Benefitting from the wider electrochemical stability window, reduced corrosivity, and excellent ionic selectivity of AiCE, the two main problems (gassing and cyclability) of proton batteries are successfully solved. This work draws attention to the element cross-over problem in proton batteries and the generic "acid-in-clay" solid electrolyte approach with superfast proton transport, outstanding selectivity, and improved stability for room- to cryogenic-temperature protonic applications.
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