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Lithium-Sulfur Battery: Design, Characterization, and Physically-based Modeling

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Lithium-Sulfur Battery: Design, Characterization, and Physically-based Modeling ( lithium-sulfur-battery-design-characterization-and-physicall )

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[206] [207] [208] [209] [210] [211] [212] [213] [214] [215] [216] [217] [218] V. Z. Zadin, D. Brandell, H. Kasemägi, A. Aabloo, and J. O. Thomas. Finite element modelling of ion transport in the electrolyte of a 3D-microbattery. Solid State Ionics 192, 279–283 (2011). C. W. Monroe and C. Delacourt. Continuum transport laws for locally non-neutral concentrated electrolytes. Electrochimica Acta 114, 649–657 (2013). J. Liu and C. W. Monroe. Solute-volume effects in electrolyte transport. Electrochim- ica Acta 135, 447–460 (2014). C. Delacourt. Modeling Li-Ion Batteries with Electrolyte Additives or Contaminants. Journal of The Electrochemical Society 160, A1997–A2004 (2013). L.ShenandZ.Chen.Criticalreviewoftheimpactoftortuosityondiffusion.Chemical Engineering Science 62, 3748–3755 (2007). R. J. Kee, M. E. Coltrin, and P. Glarborg. Chemically Reacting Flow. First edition. John Wiley & Sons (2003). A. Latz and J. Zausch. Thermodynamic derivation of a Butler-Volmer model for inter- calation in Li-ion batteries. Electrochimica Acta 110, 358–362 (2013). S. Srinivasan. Fuel Cells, chapter 2.1 Double layer at electrode/electrolyte inter- faces. First edition. Springer (2006). W. Nernst. Die elektromotorische Wirksamkeit der Ionen. Zeitschrift für Physikalis- che Chemie 4, 129–181 (1889). J. P. Neidhardt. Nickel oxidation in Solid Oxide Cells. Ph.D. thesis, Universität Stuttgart (January 2013). http://elib.uni-stuttgart.de/opus/volltexte/ 2014/8844/. Supervisor: W. G. Bessler. R. Kelling, J. Bickel, U. Nieken, and P. A. Zegeling. An adaptive moving grid method for solving convection dominated transport equations in chemical engineering. Computers & Chemical Engineering 71, 467–477 (2014). E. Bohn, T. Eckl, M. Kamlah, and R. McMeeking. A Model for Lithium Diffusion and Stress Generation in an Intercalation Storage Particle with Phase Change. Journal of The Electrochemical Society 160, A1638–A1652 (2013). E. V. Shilko, S. G. Psakhie, S. Schmauder, V. L. Popov, S. V. Astafurov, and A. Y. Smolin. Overcoming the limitations of distinct element method for multiscale modeling of materials with multimodal internal structure. Computational Materials Science 102, 267 – 285 (2015). 171

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