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Improving the Interfacial Stability between Lithium and Solid‐State Electrolyte via Dipole‐Structured Lithium Layer Deposited on Graphene Oxide

机译:通过沉积在石墨烯氧化物上的偶极结构锂层改善锂和固态电解质之间的界面稳定性

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Utilization of lithium (Li) metal anode in solid‐state batteries (SSBs) with sulfide solid‐state electrolyte (SSE) is hindered by the instable Li/SSE interface. A general solution to solve this problem is to place an expensive indium (In) foil between the SSE and Li, while it decreases the output voltage and thus the energy density of the battery. In this work, an alternative strategy is demonstrated to boost the cycling performances of SSB by wrapping a graphene oxide (GO) layer on the anode. According to density functional theory results, initial deposition of a thin Li layer on the defective GO sheets leads to the formation of a dipole structure, due to the electron‐withdrawing ability of GO acting on Li. By incorporating GO sheets in a nanocomposite of copper‐cuprous oxide‐GO (Cu‐Cu2O‐GO, CCG), a composite Li anode enables a high coulombic efficiency above 99.5% over 120 cycles for an SSB using Li10GeP2S12 SSE and LiCoO2 cathode, and the sulfide SSE is not chemically decomposed after cycling. The highest occupied molecule orbital/lowest unoccupied molecular orbital energy gap of this Li/GO dipole structure likely stretches over those of Li and sulfide SSE, enabling stabilized Li/SSE interface that can replace the expensive In layer as Li protective structure in SSBs.
机译:用硫化物固态电解质(SSE)的固态电池(SSSB)在固态电池(SSE)中的利用是由不稳定的LI / SSE界面阻碍的。解决这个问题的一般解决方案是在SSE和Li之间放置昂贵的铟(In)箔,而它会降低输出电压并因此降低电池的能量密度。在这项工作中,通过在阳极上包裹石墨烯氧化物(GO)层来证明替代策略以提高SSB的循环性能。根据密度函数理论结果,由于去锂作用的吸电子能力,缺陷去纸板上的薄Li层对缺陷的纸张上的薄Li层的初始沉积导致偶极结构的形成。通过将Go纸张掺入铜 - 氧化铜 - 氧化铜(Cu-Cu2O-Go,CCG)中,复合Li阳极通过Li10Gep2S12 SSE和LiCoO2阴极为SSB获得高于99.5%超过120次循环的高于99.5%的Coulombic效率。循环后,硫化物SSE在化学上没有化学分解。这种Li / Go偶极结构的最高占用分子轨道/最低未占用的分子轨道能量差距可能会延伸在Li和硫化物SSE的那些,使稳定的Li / SSE界面可以取代SSB中的Li保护结构昂贵的层。

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