School of Energy and Chemical Engineering, Department of Energy Engineering, UNIST, Ulsan, 44919, South Korea.
School of Chemical and Biological Engineering, Seoul National University, Seoul, 151-742, South Korea.
Angew Chem Int Ed Engl. 2016 Aug 8;55(33):9634-8. doi: 10.1002/anie.201604158. Epub 2016 Jul 5.
All-solid-state sodium-ion batteries that operate at room temperature are attractive candidates for use in large-scale energy storage systems. However, materials innovation in solid electrolytes is imperative to fulfill multiple requirements, including high conductivity, functional synthesis protocols for achieving intimate ionic contact with active materials, and air stability. A new, highly conductive (1.1 mS cm(-1) at 25 °C, Ea =0.20 eV) and dry air stable sodium superionic conductor, tetragonal Na3 SbS4 , is described. Importantly, Na3 SbS4 can be prepared by scalable solution processes using methanol or water, and it exhibits high conductivities of 0.1-0.3 mS cm(-1) . The solution-processed, highly conductive solidified Na3 SbS4 electrolyte coated on an active material (NaCrO2 ) demonstrates dramatically improved electrochemical performance in all-solid-state batteries.
全固态室温钠离子电池有望成为大型储能系统的候选设备。然而,为了满足多种要求,包括高导电性、与活性材料实现紧密离子接触的功能合成方案,以及空气稳定性,需要在固体电解质方面进行材料创新。本文介绍了一种新型的高导电性(25℃时为 1.1mS/cm,Ea=0.20eV)且在干燥空气中稳定的钠离子超离子导体四方相 Na3SbS4。重要的是,Na3SbS4 可以使用甲醇或水通过可扩展的溶液工艺制备,并且其表现出 0.1-0.3mS/cm 的高电导率。涂覆在活性材料(NaCrO2)上的溶液处理的高导电性固态 Na3SbS4 电解质在全固态电池中表现出显著改善的电化学性能。