Literature DB >> 28880071

Phase-Field Based Multiscale Modeling of Heterogeneous Solid Electrolytes: Applications to Nanoporous Li3PS4.

Jia-Mian Hu1, Bo Wang1, Yanzhou Ji1, Tiannan Yang1, Xiaoxing Cheng1, Yi Wang1, Long-Qing Chen1.   

Abstract

Modeling the effective ion conductivities of heterogeneous solid electrolytes typically involves the use of a computer-generated microstructure consisting of randomly or uniformly oriented fillers in a matrix. However, the structural features of the filler/matrix interface, which critically determine the interface ion conductivity and the microstructure morphology, have not been considered during the microstructure generation. Using nanoporous β-Li3PS4 electrolyte as an example, we develop a phase-field model that enables generating nanoporous microstructures of different porosities and connectivity patterns based on the depth and the energy of the surface (pore/electrolyte interface), both of which are predicted through density functional theory (DFT) calculations. Room-temperature effective ion conductivities of the generated microstructures are then calculated numerically, using DFT-estimated surface Li-ion conductivity (3.14 × 10-3 S/cm) and experimentally measured bulk Li-ion conductivity (8.93 × 10-7 S/cm) of β-Li3PS4 as the inputs. We also use the generated microstructures to inform effective medium theories to rapidly predict the effective ion conductivity via analytical calculations. When porosity approaches the percolation threshold, both the numerical and analytical methods predict a significantly enhanced Li-ion conductivity (1.74 × 10-4 S/cm) that is in good agreement with experimental data (1.64 × 10-4 S/cm). The present phase-field based multiscale model is generally applicable to predict both the microstructure patterns and the effective properties of heterogeneous solid electrolytes.

Entities:  

Keywords:  density functional theory; effective medium theory; ion conductivity; phase-field modeling; solid electrolytes

Year:  2017        PMID: 28880071     DOI: 10.1021/acsami.7b11292

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Electrically reversible cracks in an intermetallic film controlled by an electric field.

Authors:  Z Q Liu; J H Liu; M D Biegalski; J-M Hu; S L Shang; Y Ji; J M Wang; S L Hsu; A T Wong; M J Cordill; B Gludovatz; C Marker; H Yan; Z X Feng; L You; M W Lin; T Z Ward; Z K Liu; C B Jiang; L Q Chen; R O Ritchie; H M Christen; R Ramesh
Journal:  Nat Commun       Date:  2018-01-03       Impact factor: 14.919

2.  Elucidating the Role of Microstructure in Thiophosphate Electrolytes - a Combined Experimental and Theoretical Study of β-Li3 PS4.

Authors:  Tugce Ates; Anton Neumann; Timo Danner; Arnulf Latz; Maider Zarrabeitia; Dominik Stepien; Alberto Varzi; Stefano Passerini
Journal:  Adv Sci (Weinh)       Date:  2022-04-24       Impact factor: 17.521

  2 in total

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