Bayesian optimisation with transfer learning for NASICON-type solid electrolytes for all-solid-state Li-metal batteries

被引:10
|
作者
Fukuda, Hiroko [1 ]
Kusakawa, Shunya [2 ]
Nakano, Koki [1 ]
Tanibata, Naoto [1 ]
Takeda, Hayami [1 ]
Nakayama, Masanobu [1 ]
Karasuyama, Masayuki [2 ]
Takeuchi, Ichiro [2 ,3 ,4 ]
Natori, Takaaki [5 ]
Ono, Yasuharu [5 ]
机构
[1] Nagoya Inst Technol, Dept Adv Ceram, Showa Ku, Gokiso Cho, Nagoya, Aichi 4668555, Japan
[2] Nagoya Inst Technol, Dept Comp Sci, Showa Ku, Gokiso Cho, Nagoya, Aichi 4668555, Japan
[3] RIKEN, Ctr Adv Intelligence Project, Chuo Ku, 1-4-1 Nihonbashi, Tokyo 1030027, Japan
[4] Nagoya Univ, Fac Engn, Chikusa Ku, Furo Cho, Nagoya, Aichi 4648601, Japan
[5] TOAGOSEI CO LTD, Gen Ctr R&D, Minato Ku, 8 Showa Cho, Nagoya, Aichi 4550026, Japan
关键词
LITHIUM METAL; IONIC-CONDUCTIVITY; RECHARGEABLE BATTERIES; EXPERIMENTAL SEARCH; HIGH-ENERGY; CHALLENGES; CONDUCTORS; MOBILITY; ANODE;
D O I
10.1039/d2ra04539g
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
NASICON-type LiZr2(PO4)(3) (LZP) has attracted significant attention as a solid oxide electrolyte for all-solid-state Li-ion or Li-metal batteries owing to its high Li-ion conductivity, usability in all-solid-state batteries, and electrochemical stability against Li metal. In this study, we aim to improve the Li-ion conductivity of Li-rich NASICON-type LZPs doped with CaO and SiO2, i.e., Li1+x+2yCayZr2-ySixP3-xO12(0 <= x <= 0.3, 0 <= y <= 0.3) (LCZSP). Herein, a total of 49 compositions were synthesised, and their crystal structures, relative densities, and Li-ion conductivities were characterised experimentally. We confirmed the improvement in Li-ion conductivity by simultaneous replacement of Zr and P sites with Ca and Si ions, respectively. However, the intuition-derived determination of the composition exhibiting the highest Li-ion conductivity is technically difficult because the compositional dependence of the relative density and the crystalline phase of the sample is very complex. Bayesian optimisation (BO) was performed to efficiently discover the optimal composition that exhibited the highest Li-ion conductivity among the samples evaluated experimentally. We also optimised the composition of the LCZSP using multi-task Gaussian process regression after transferring prior knowledge of 47 compositions of Li1+x+2yYxCayZr2-x-yP3O12 (0 <= x <= 0.376, 0 <= y <= 0.376) (LYCZP), i.e., BO with transfer learning. The present study successfully demonstrated that BO with transfer learning can search for optimal compositions two times as rapid as the conventional BO approach. This approach can be widely applicable for the optimisation of various functional materials as well as ionic conductors.
引用
收藏
页码:30696 / 30703
页数:8
相关论文
共 50 条
  • [41] Restraining lithium dendrite formation in all-solid-state Li-metal batteries via the surface modification of the ceramic filler
    Jamal, Hasan
    Khan, Firoz
    Lim, Heesoo
    Kim, Jae Hyun
    SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2023, 35
  • [42] Li-argyrodite solid-state electrolytes with lithium compatibility and air stability for all-solid-state batteries
    Wang, Daoxi
    Shi, Haiting
    Cui, Wenhui
    Li, Hao
    Niu, Jiarong
    Wang, Shuo
    Xu, Zhiwei
    JOURNAL OF MATERIALS CHEMISTRY A, 2024, 12 (18) : 10863 - 10874
  • [43] Triple-doped Argyrodite Sulfide Electrolyte with Improved Air Stability and Lithium Compatibility for All-Solid-State Li-Metal Batteries
    Choi, Yeong Jun
    Hwang, Yun Ji
    Kim, Sun-I.
    Kwak, Myung-Jun
    Kim, Taehyo
    CHEMICAL ENGINEERING JOURNAL, 2024, 497
  • [44] Cell failures of all-solid-state lithium metal batteries with inorganic solid electrolytes: Lithium dendrites
    Ke, Xinyou
    Wang, Yan
    Dai, Liming
    Yuan, Chris
    ENERGY STORAGE MATERIALS, 2020, 33 : 309 - 328
  • [45] Preparation, design and interfacial modification of sulfide solid electrolytes for all-solid-state lithium metal batteries
    Li, Jianwei
    Li, Yuanyuan
    Wang, Yuxiao
    Wang, Xiaojun
    Wang, Peng
    Ci, Lijie
    Liu, Zhiming
    ENERGY STORAGE MATERIALS, 2025, 74
  • [46] Inorganic sulfide solid electrolytes for all-solid-state lithium secondary batteries
    Lian, Peng-Jie
    Zhao, Bo-Sheng
    Zhang, Lian-Qi
    Xu, Ning
    Wu, Meng-Tao
    Gao, Xue-Ping
    JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (36) : 20540 - 20557
  • [47] Polymer/ceramic interfacial layer enables stable cycling of all-solid-state Li-metal batteries with sulfide electrolyte
    Xiao, Kexin
    Ren, Pengfei
    Wang, Xiaofen
    Chen, Hong
    Zhou, Qiongyu
    MATERIALS LETTERS, 2024, 362
  • [48] High-Voltage Superionic Halide Solid Electrolytes for All-Solid-State Li-Ion Batteries
    Park, Kern-Ho
    Kaup, Kavish
    Assoud, Abdeljalil
    Zhang, Qiang
    Wu, Xiaohan
    Nazar, Linda F.
    ACS ENERGY LETTERS, 2020, 5 (02): : 533 - +
  • [49] Recent advances in NASICON-type oxide electrolytes for solid-state sodium-ion rechargeable batteries
    Kushal Singh
    Anjan Chakraborty
    Raghunayakula Thirupathi
    Shobit Omar
    Ionics, 2022, 28 : 5289 - 5319
  • [50] Recent Progress in Quasi/All-Solid-State Electrolytes for Lithium-Sulfur Batteries
    Yang, Shichun
    Zhang, Zhengjie
    Lin, Jiayuan
    Zhang, Lisheng
    Wang, Lijing
    Chen, Siyan
    Zhang, Cheng
    Liu, Xinhua
    FRONTIERS IN ENERGY RESEARCH, 2022, 10