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Elastic Properties, Defect Thermodynamics, Electrochemical Window, Phase Stability, and Li<sup>+</sup> Mobility of Li<sub>3</sub>PS<sub>4</sub>: Insights from First-Principles Calculations
136
Citations
62
References
2016
Year
EngineeringChemistryChemical EngineeringMaterial PhysicKnock-off DiffusionMaterials ScienceSolid-state IonicBattery Electrode MaterialsLithium-ion BatteryLithium-ion BatteriesBattery AdditivesEnergy StorageSolid-state BatteryEnergy MaterialDefect ThermodynamicsElectrochemistryLi-ion Battery MaterialsApplied PhysicsCathode MaterialsElectrochemical WindowElastic PropertiesMigration MechanismElectrochemical Energy StorageBatteries
The improved ionic conductivity (1.64 × 10(-4) S cm(-1) at room temperature) and excellent electrochemical stability of nanoporous β-Li3PS4 make it one of the promising candidates for rechargeable all-solid-state lithium-ion battery electrolytes. Here, elastic properties, defect thermodynamics, phase diagram, and Li(+) migration mechanism of Li3PS4 (both γ and β phases) are examined via the first-principles calculations. Results indicate that both γ- and β-Li3PS4 phases are ductile while γ-Li3PS4 is harder under volume change and shear stress than β-Li3PS4. The electrochemical window of Li3PS4 ranges from 0.6 to 3.7 V, and thus the experimentally excellent stability (>5 V) is proposed due to the passivation phenomenon. The dominant diffusion carrier type in Li3PS4 is identified over its electrochemical window. In γ-Li3PS4 the direct-hopping of Lii(+) along the [001] is energetically more favorable than other diffusion processes, whereas in β-Li3PS4 the knock-off diffusion of Lii(+) along the [010] has the lowest migration barrier. The ionic conductivity is evaluated from the concentration and the mobility calculations using the Nernst-Einstein relationship and compared with the available experimental results. According to our calculated results, the Li(+) prefers to transport along the [010] direction. It is suggested that the enhanced ionic conductivity in nanostructured β-Li3PS4 is due to the larger possibility of contiguous (010) planes provided by larger nanoporous β-Li3PS4 particles. By a series of motivated and closely linked calculations, we try to provide a portable method, by which researchers could gain insights into the physicochemical properties of solid electrolyte.
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