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Accessing the bottleneck in all-solid state batteries, lithium-ion transport over the solid-electrolyte-electrode interface

机译:锂离子电池进入了全固态电池的瓶颈,通过固态电解质电极界面传输

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Solid-state batteries potentially offer increased lithium-ion battery energy density and safety as required for large-scale production of electrical vehicles. One of the key challenges toward high-performance solid-state batteries is the large impedance posed by the electrode–electrolyte interface. However, direct assessment of the lithium-ion transport across realistic electrode–electrolyte interfaces is tedious. Here we report two-dimensional lithium-ion exchange NMR accessing the spontaneous lithium-ion transport, providing insight on the influence of electrode preparation and battery cycling on the lithium-ion transport over the interface between an argyrodite solid-electrolyte and a sulfide electrode. Interfacial conductivity is shown to depend strongly on the preparation method and demonstrated to drop dramatically after a few electrochemical (dis)charge cycles due to both losses in interfacial contact and increased diffusional barriers. The reported exchange NMR facilitates non-invasive and selective measurement of lithium-ion interfacial transport, providing insight that can guide the electrolyte–electrode interface design for future all-solid-state batteries.
机译:固态电池有可能提供电动汽车大规模生产所需的更高的锂离子电池能量密度和安全性。高性能固态电池面临的主要挑战之一是电极-电解质界面带来的大阻抗。然而,直接评估锂离子在现实的电极-电解质界面上的迁移非常繁琐。在这里,我们报告二维锂离子交换NMR访问自发的锂离子传输,从而提供了关于电极制备和电池循环对在银矿质固体电解质和硫化物电极之间的界面上锂离子传输的影响的见解。界面电导率在很大程度上取决于制备方法,并且在几次电化学(放电)循环后由于界面接触的损失和扩散势垒的增加而急剧下降。报道的交换NMR有助于锂离子界面迁移的非侵入性和选择性测量,提供了可为将来的全固态电池指导电解质-电极界面设计的见识。

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