Chen Yu, Zhao Xinye, Chen Ke, Koirala Krishna Prasad, Giovine Raynald, Yang Xiaochen, Wang Shilong, Szymanski Nathan J, Xiong Shuoyan, Lun Zhengyan, Ji Huiwen, Wang Chongmin, Bai Jianming, Wang Feng, Ouyang Bin, Ceder Gerbrand
Department of Materials Science and Engineering, University of California, Berkeley, CA, 94720, USA.
Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.
Adv Mater. 2025 Feb;37(7):e2416342. doi: 10.1002/adma.202416342. Epub 2024 Dec 23.
Rationalizing synthetic pathways is crucial for material design and property optimization, especially for polymorphic and metastable phases. Over-stoichiometric rocksalt (ORX) compounds, characterized by their face-sharing configurations, are a promising group of materials with unique properties; however, their development is significantly hindered by challenges in synthesizability. Here, taking the recently identified Li superionic conductor, over-stoichiometric rocksalt Li-In-Sn-O (o-LISO) material as a prototypical ORX compound, the mechanisms of phase formation are systematically investigated. It is revealed that the spinel-like phase with unconventional stoichiometry forms as coherent precipitate from the high-temperature-stabilized cation-disordered rocksalt phase upon fast cooling. This process prevents direct phase decomposition and kinetically locks the system in a metastable state with the desired face-sharing Li configurations. This insight enables us to enhance the ionic conductivity of o-LISO to be >1 mS cm at room temperature through low-temperature post-annealing. This work offers insights into the synthesis of ORX materials and highlights important opportunities in this new class of materials.
合理化合成途径对于材料设计和性能优化至关重要,特别是对于多晶型和亚稳相。过化学计量比的岩盐(ORX)化合物,以其共面构型为特征,是一类具有独特性能的有前途的材料;然而,它们的发展受到合成可行性挑战的显著阻碍。在此,以最近发现的锂超离子导体、过化学计量比的岩盐Li-In-Sn-O(o-LISO)材料作为典型的ORX化合物,系统地研究了相形成机制。结果表明,具有非常规化学计量比的类尖晶石相在快速冷却时作为连贯沉淀从高温稳定的阳离子无序岩盐相中形成。这一过程防止了直接相分解,并在动力学上使系统锁定在具有所需共面锂构型的亚稳态。这一见解使我们能够通过低温后退火将o-LISO在室温下的离子电导率提高到>1 mS cm。这项工作为ORX材料的合成提供了见解,并突出了这类新材料中的重要机遇。