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Published on: April 12, 2019
Lessons Learned on Obtaining Reliable Conductivity Estimates From Molecular Dynamics Simulations
Paul Zaby1, Johannes Ingenmey1, Tuanan C Lourenço2
1Mulliken Center for Theoretical Chemistry, University of Bonn, Bonn, Germany.
Summary
Calculating ionic conductivity from molecular dynamics simulations is challenging for complex electrolytes. The new TRAVIS conduct module improves accuracy by including ionic correlations, offering reliable estimates for ionic liquids and electrolytes.
Area of Science:
- Computational Chemistry
- Materials Science
- Electrochemistry
Background:
- Calculating ionic conductivity via molecular dynamics (MD) is crucial for electrolytes.
- The Nernst-Einstein method often fails for strongly correlated systems like ionic liquids.
- Accurate conductivity calculations are essential for designing advanced energy storage materials.
Purpose of the Study:
- Introduce the new 'conduct' module in TRAVIS for MD simulations.
- Enable reliable calculation of ionic conductivity, accounting for ionic correlations.
- Provide best practices for estimating physicochemical properties from electrolyte MD.
Main Methods:
- Implemented Einstein-Helfand and Green-Kubo formalisms in the TRAVIS 'conduct' module.
- Utilized MD simulations to model ionic liquid [EMIm][DCA] and LiFSI/DME electrolyte.
- Compared different methods for statistically reliable property estimation.
Main Results:
- The 'conduct' module successfully calculates ionic conductivity by including ionic correlations.
- Demonstrated the module's capability in simulating complex ionic liquids and electrolytes.
- Provided a framework for assessing transport numbers and the inverse Haven ratio.
Conclusions:
- The TRAVIS 'conduct' module offers a robust approach for accurate ionic conductivity calculation.
- The implemented methods overcome limitations of the Nernst-Einstein approach for correlated systems.
- This tool facilitates reliable characterization of electrolyte properties for energy applications.
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