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First-principles prediction of potentials and space-charge layers in all-solid-state batteries

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arxiv 1902.11158 v2 pith:C3DE2RJ3 submitted 2019-02-28 cond-mat.mtrl-sci physics.chem-ph

classification cond-mat.mtrl-sciphysics.chem-ph
keywords modelpotentialall-solid-statebatterieslayersspace-chargessbstext
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abstract

As all-solid-state batteries (SSBs) develop as an alternative to traditional cells, a thorough theoretical understanding of driving forces behind battery operation is needed. We present a fully first-principles-informed model of potential profiles in SSBs and apply the model to the Li/LiPON/$\text{Li}_x\text{CoO}_2$ system. The model predicts interfacial potential drops driven by both electron transfer and Li$^+$ space-charge layers that vary with the SSB's state of charge. The results suggest lower electronic ionization potential in the solid electrolyte favors Li$^+$ transport, leading to higher discharge power.

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