Department of Materials Science and Engineering, Stanford University, Stanford, CA, 94305, USA.
Department of Mechanical Engineering, Stanford University, Stanford, CA, 94305, USA.
Adv Mater. 2018 Aug;30(32):e1802661. doi: 10.1002/adma.201802661. Epub 2018 Jun 25.
High-energy all-solid-state lithium (Li) batteries have great potential as next-generation energy-storage devices. Among all choices of electrolytes, polymer-based systems have attracted widespread attention due to their low density, low cost, and excellent processability. However, they are generally mechanically too weak to effectively suppress Li dendrites and have lower ionic conductivity for reasonable kinetics at ambient temperature. Herein, an ultrastrong reinforced composite polymer electrolyte (CPE) is successfully designed and fabricated by introducing a stiff mesoporous SiO aerogel as the backbone for a polymer-based electrolyte. The interconnected SiO aerogel not only performs as a strong backbone strengthening the whole composite, but also offers large and continuous surfaces for strong anion adsorption, which produces a highly conductive pathway across the composite. As a consequence, a high modulus of ≈0.43 GPa and high ionic conductivity of ≈0.6 mS cm at 30 °C are simultaneously achieved. Furthermore, LiFePO -Li full cells with good cyclability and rate capability at ambient temperature are obtained. Full cells with cathode capacity up to 2.1 mAh cm are also demonstrated. The aerogel-reinforced CPE represents a new design principle for solid-state electrolytes and offers opportunities for future all-solid-state Li batteries.
高能量全固态锂(Li)电池作为下一代储能设备具有巨大的潜力。在所有电解质选择中,由于其低密度、低成本和优异的加工性能,基于聚合物的系统受到了广泛关注。然而,它们通常在机械上太弱,无法有效抑制 Li 枝晶的生长,并且在环境温度下的合理动力学下离子电导率较低。在此,通过引入刚性介孔 SiO 气凝胶作为聚合物电解质的骨架,成功设计并制备了一种超坚固的增强型复合聚合物电解质(CPE)。互连的 SiO 气凝胶不仅作为增强整个复合材料的坚固骨架,而且提供了用于强阴离子吸附的大且连续的表面,从而在复合材料中产生了高导电性的途径。因此,同时实现了约 0.43 GPa 的高模量和约 0.6 mS cm 的高离子电导率(在 30°C 下)。此外,在环境温度下获得了具有良好循环稳定性和倍率性能的 LiFePO4-Li 全电池。还展示了具有高达 2.1 mAh cm 的阴极容量的全电池。气凝胶增强的 CPE 代表了固态电解质的一种新设计原则,并为未来的全固态 Li 电池提供了机会。