Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, China.
School of Materials Science and Engineering, University of Science and Technology of China, 72 Wenhua Road, Shenyang 110016, China.
Science. 2020 Oct 30;370(6516):596-600. doi: 10.1126/science.abb9704.
Proton transport in nanochannels under humid conditions is crucial for the application in energy storage and conversion. However, existing materials, including Nafion, suffer from limited conductivity of up to 0.2 siemens per centimeter. We report a class of membranes assembled with two-dimensional transition-metal phosphorus trichalcogenide nanosheets, in which the transition-metal vacancies enable exceptionally high ion conductivity. A CdPSLiH membrane exhibits a proton conduction dominant conductivity of ~0.95 siemens per centimeter at 90° Celsius and 98% relative humidity. This performance mainly originates from the abundant proton donor centers, easy proton desorption, and excellent hydration of the membranes induced by cadmium vacancies. We also observed superhigh lithium ion conductivity in CdPSLi and MnPSLi membranes.
在潮湿条件下,质子在纳米通道中的传输对于储能和转换的应用至关重要。然而,现有的材料,包括 Nafion,其电导率有限,最高可达 0.2 西门子/厘米。我们报告了一类由二维过渡金属磷三卤化物纳米片组装而成的膜,其中过渡金属空位使离子电导率异常高。CdPSLiH 膜在 90°C 和 98%相对湿度下表现出主导质子传导的电导率约为 0.95 西门子/厘米。这种性能主要源于丰富的质子供体中心、易于质子解吸以及镉空位诱导的膜的优异水合作用。我们还观察到 CdPSLi 和 MnPSLi 膜中超高的锂离子电导率。