TY - JOUR
T1 - Challenges and opportunities of practical sulfide-based all-solid-state batteries
AU - Ren, Dongsheng
AU - Lu, Languang
AU - Hua, Rui
AU - Zhu, Gaolong
AU - Liu, Xiang
AU - Mao, Yuqiong
AU - Rui, Xinyu
AU - Wang, Shan
AU - Zhao, Bosheng
AU - Cui, Hao
AU - Yang, Min
AU - Shen, Haorui
AU - Zhao, Chen Zi
AU - Wang, Li
AU - He, Xiangming
AU - Liu, Saiyue
AU - Hou, Yukun
AU - Tan, Tiening
AU - Wang, Pengbo
AU - Nitta, Yoshiaki
AU - Ouyang, Minggao
N1 - Publisher Copyright:
© 2023 The Authors
PY - 2023/10
Y1 - 2023/10
N2 - All-solid-state batteries (ASSBs) are regarded as the most promising next-generation batteries for electric vehicles in virtue of their potential advantages of enhanced safety, high energy density and power capability. Among the ASSBs based on various solid electrolytes (SEs), sulfide-based ASSBs have attracted increasing attention due to the high ionic conductivity of sulfide SEs which is comparable to that of liquid electrolytes. Extensive efforts from academia and industry have been made to develop sulfide-based ASSBs, and several significant progress has been achieved in recent years. However, successful fabrication of high-performance sulfide-based ASSBs has been rarely reported, and the practical application of sulfide-based ASSBs still faces a variety of challenges. Herein, following a bottom-up approach, we present a comprehensive review of the critical issues of practical sulfide-based ASSBs from the material, interface, composite electrode to cell levels. The existing challenges, recent advances, and future research directions of sulfide-based ASSBs at multiple levels are discussed. Finally, several fabrication processes for scaling up sulfide-based ASSBs and existing pilot/mass production schedules of sulfide-based ASSBs of the leading companies are also introduced. Facing the existing challenges and future opportunities, we highly encourage joint efforts and cooperation across the battery community to promote the practical application of sulfide-based ASSBs.
AB - All-solid-state batteries (ASSBs) are regarded as the most promising next-generation batteries for electric vehicles in virtue of their potential advantages of enhanced safety, high energy density and power capability. Among the ASSBs based on various solid electrolytes (SEs), sulfide-based ASSBs have attracted increasing attention due to the high ionic conductivity of sulfide SEs which is comparable to that of liquid electrolytes. Extensive efforts from academia and industry have been made to develop sulfide-based ASSBs, and several significant progress has been achieved in recent years. However, successful fabrication of high-performance sulfide-based ASSBs has been rarely reported, and the practical application of sulfide-based ASSBs still faces a variety of challenges. Herein, following a bottom-up approach, we present a comprehensive review of the critical issues of practical sulfide-based ASSBs from the material, interface, composite electrode to cell levels. The existing challenges, recent advances, and future research directions of sulfide-based ASSBs at multiple levels are discussed. Finally, several fabrication processes for scaling up sulfide-based ASSBs and existing pilot/mass production schedules of sulfide-based ASSBs of the leading companies are also introduced. Facing the existing challenges and future opportunities, we highly encourage joint efforts and cooperation across the battery community to promote the practical application of sulfide-based ASSBs.
KW - All-solid-state batteries
KW - Composite electrodes
KW - Interfacial instability
KW - Scaling up
KW - Sulfide solid electrolytes
UR - https://www.scopus.com/pages/publications/85169071969
U2 - 10.1016/j.etran.2023.100272
DO - 10.1016/j.etran.2023.100272
M3 - 文章
AN - SCOPUS:85169071969
SN - 2590-1168
VL - 18
JO - eTransportation
JF - eTransportation
M1 - 100272
ER -