Understanding interface stability in solid-state batteries

被引:0
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作者
Yihan Xiao
Yan Wang
Shou-Hang Bo
Jae Chul Kim
Lincoln J. Miara
Gerbrand Ceder
机构
[1] University of California Berkeley,Department of Materials Science and Engineering
[2] Lawrence Berkeley National Laboratory,Materials Sciences Division
[3] Advanced Materials Lab,Department of Chemical Engineering and Materials Science
[4] Samsung Research America,undefined
[5] University of Michigan–Shanghai Jiao Tong University Joint Institute,undefined
[6] Shanghai Jiao Tong University,undefined
[7] Stevens Institute of Technology,undefined
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摘要
Solid-state batteries (SSBs) using a solid electrolyte show potential for providing improved safety as well as higher energy and power density compared with conventional Li-ion batteries. However, two critical bottlenecks remain: the development of solid electrolytes with ionic conductivities comparable to or higher than those of conventional liquid electrolytes and the creation of stable interfaces between SSB components, including the active material, solid electrolyte and conductive additives. Although the first goal has been achieved in several solid ionic conductors, the high impedance at various solid/solid interfaces remains a challenge. Recently, computational models based on ab initio calculations have successfully predicted the stability of solid electrolytes in various systems. In addition, a large amount of experimental data has been accumulated for different interfaces in SSBs. In this Review, we summarize the experimental findings for various classes of solid electrolytes and relate them to computational predictions, with the aim of providing a deeper understanding of the interfacial reactions and insight for the future design and engineering of interfaces in SSBs. We find that, in general, the electrochemical stability and interfacial reaction products can be captured with a small set of chemical and physical principles.
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页码:105 / 126
页数:21
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