TY - JOUR
T1 - Molecular reconfigurations enabling active liquid-solid interfaces for ultrafast Li diffusion kinetics in the 3D framework of a garnet solid-state electrolyte
AU - Wei, Fuxin
AU - Wu, Shufen
AU - Zhang, Jiliang
AU - Fan, Hongyang
AU - Wang, Liuyang
AU - Lau, Vincent Wing Hei
AU - Hou, Sizhou
AU - Zhang, Minmin
AU - Zhang, Jiafeng
AU - Liang, Bo
AU - Zhao, Ruirui
N1 - Funding Information:
This work was nancially supported by the National Natural Science Foundation of China (no. 51822812, 52076047), Guangdong Science and Technology Department (no. 2017A030310307 and 2019A050513009), and in part by National Key R&D program of China (no. 2018YFB1502200).
Publisher Copyright:
© The Royal Society of Chemistry 2021.
PY - 2021/8/21
Y1 - 2021/8/21
N2 - Developing all solid-state lithium ion batteries (ASSBs) is a promising way to solve safety issues surrounding liquid-based batteries, yet the interfacial issues make ASSBs insufficient in providing long-term cycling performance or acceptable rate capabilities. Herein, we propose a new kind of electrolyte configuration, comprising a 3D ceramic framework filled with plastic crystals on the surface, to effectively enhance the interfacial Li diffusion kinetics. The soft plastic crystals enable not only excellent contact with the rigid framework and cathodes, but also rapid molecular reorganization to accommodate the interfacial Li, achieving ultrafast Li diffusion globallyviathe 3D framework. As a result, the ASSBs with the proposed electrolyte (i.e.garnet-succinonitrile composites) show an extremely low interfacial resistance, providing an initial discharge capacity of 165.3 mA h g−1and a 95% capacity retention after 100 cycles when using a LiNi0.5Co0.2Mn0.3O2(NCM) cathode. Furthermore, these NCM-ASSBs using the designed electrolyte even exhibit better cycling performance within a higher voltage range (2.8-4.5 V) than conventional lithium ion batteries (LIBs) using conventional liquid electrolytes (LEs). A capacity retention rate of 92% for 3DLLZO-PCE is demonstrated, against the 85% for LE-LIBs after 50 cycles. We believe that this strategy provides useful guidance for constructing high-performance ASSBs, which is important in their further commercialization.
AB - Developing all solid-state lithium ion batteries (ASSBs) is a promising way to solve safety issues surrounding liquid-based batteries, yet the interfacial issues make ASSBs insufficient in providing long-term cycling performance or acceptable rate capabilities. Herein, we propose a new kind of electrolyte configuration, comprising a 3D ceramic framework filled with plastic crystals on the surface, to effectively enhance the interfacial Li diffusion kinetics. The soft plastic crystals enable not only excellent contact with the rigid framework and cathodes, but also rapid molecular reorganization to accommodate the interfacial Li, achieving ultrafast Li diffusion globallyviathe 3D framework. As a result, the ASSBs with the proposed electrolyte (i.e.garnet-succinonitrile composites) show an extremely low interfacial resistance, providing an initial discharge capacity of 165.3 mA h g−1and a 95% capacity retention after 100 cycles when using a LiNi0.5Co0.2Mn0.3O2(NCM) cathode. Furthermore, these NCM-ASSBs using the designed electrolyte even exhibit better cycling performance within a higher voltage range (2.8-4.5 V) than conventional lithium ion batteries (LIBs) using conventional liquid electrolytes (LEs). A capacity retention rate of 92% for 3DLLZO-PCE is demonstrated, against the 85% for LE-LIBs after 50 cycles. We believe that this strategy provides useful guidance for constructing high-performance ASSBs, which is important in their further commercialization.
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U2 - 10.1039/d1ta03569j
DO - 10.1039/d1ta03569j
M3 - Article
AN - SCOPUS:85112467039
SN - 2050-7488
VL - 9
SP - 17039
EP - 17047
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 31
ER -