Gamon Jacinthe, Duff Benjamin B, Dyer Matthew S, Collins Christopher, Daniels Luke M, Surta T Wesley, Sharp Paul M, Gaultois Michael W, Blanc Frédéric, Claridge John Bleddyn, Rosseinsky Matthew J
Department of Chemistry, University of Liverpool, Crown Street, L69 7ZD Liverpool, U.K.
Stephenson Institute for Renewable Energy, University of Liverpool, Peach Street L69 7ZF Liverpool, U.K.
Chem Mater. 2019 Dec 10;31(23):9699-9714. doi: 10.1021/acs.chemmater.9b03230. Epub 2019 Oct 23.
With the goal of finding new lithium solid electrolytes by a combined computational-experimental method, the exploration of the Li-Al-O-S phase field resulted in the discovery of a new sulfide LiAlS. The structure of the new phase was determined through an approach combining synchrotron X-ray and neutron diffraction with Li and Al magic-angle spinning nuclear magnetic resonance spectroscopy and revealed to be a highly ordered cationic polyhedral network within a sulfide anion -type sublattice. The originality of the structure relies on the presence of AlS repeating dimer units consisting of two edge-shared Al tetrahedra. We find that, in this structure type consisting of alternating tetrahedral layers with Li-only polyhedra layers, the formation of these dimers is constrained by the Al/S ratio of 1/3. Moreover, by comparing this structure to similar phases such as LiAlS and LiAlGeS ((Al + Ge)/S = 1/4), we discovered that the AlS dimers not only influence atomic displacements and Li polyhedral distortions but also determine the overall Li polyhedral arrangement within the lattice, leading to the presence of highly ordered vacancies in both the tetrahedral and Li-only layer. AC impedance measurements revealed a low lithium mobility, which is strongly impacted by the presence of ordered vacancies. Finally, a composition-structure-property relationship understanding was developed to explain the extent of lithium mobility in this structure type.
以通过计算与实验相结合的方法寻找新型锂固体电解质为目标,对Li-Al-O-S相场的探索导致发现了一种新的硫化物LiAlS。通过将同步加速器X射线和中子衍射与Li和Al魔角旋转核磁共振光谱相结合的方法确定了新相的结构,结果表明它是硫化物阴离子型亚晶格内高度有序的阳离子多面体网络。该结构的独特之处在于存在由两个共边Al四面体组成的AlS重复二聚体单元。我们发现,在这种由交替的四面体层和仅含Li的多面体层组成的结构类型中,这些二聚体的形成受Al/S比为1/3的限制。此外,通过将这种结构与类似相如LiAlS和LiAlGeS((Al + Ge)/S = 1/4)进行比较,我们发现AlS二聚体不仅影响原子位移和Li多面体畸变,还决定了晶格内整体的Li多面体排列,导致四面体层和仅含Li的层中都存在高度有序的空位。交流阻抗测量显示锂迁移率较低,这受到有序空位存在的强烈影响。最后建立了成分-结构-性能关系的理解,以解释这种结构类型中锂迁移率的程度。