电解质
电化学
材料科学
阳极
化学物理
快离子导体
锂(药物)
电极
密度泛函理论
电池(电)
带材弯曲
空间电荷
化学
热力学
电子
物理化学
光电子学
计算化学
物理
内分泌学
功率(物理)
医学
量子力学
作者
Michael W. Swift,James W. Swift,Yue Qi
标识
DOI:10.1038/s43588-021-00041-y
摘要
Models of the electrical double layer (EDL) at electrode/liquid-electrolyte interfaces no longer hold for all-solid-state electrochemistry. Here we show a more general model for the EDL at a solid-state electrochemical interface based on the Poisson–Fermi–Dirac equation. By combining this model with density functional theory predictions, the interconnected electronic and ionic degrees of freedom in all-solid-state batteries, including the electronic band bending and defect concentration variation in the space-charge layer, are captured self-consistently. Along with a general mathematical solution, the EDL structure is presented in various materials that are thermodynamically stable in contact with a lithium metal anode: the solid electrolyte Li7La3Zr2O12 (LLZO) and the solid interlayer materials LiF, Li2O and Li2CO3. The model further allows design of the optimum interlayer thicknesses to minimize the electrostatic barrier for lithium ion transport at relevant solid-state battery interfaces. A self-consistent model that bridges electrochemistry and solid-state physics is developed to fully describe the ion and electron distribution at solid electrode/electrolyte interfaces and applied to lower interfacial resistance in batteries.
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