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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[275] [276] [277] [278] [279] [280] [281] [282] [283] [284] [285] M. B. Pinson and M. Z. Bazant. Theory of SEI Formation in Rechargeable Batteries: Capacity Fade, Accelerated Aging and Lifetime Prediction. Journal of The Electro- chemical Society 160, A243–A250 (2013). S. Schmauder. Computational Mechanics. Annual Review of Materials Research 32, 437–465 (2002). H. Yamin, A. Gorenshtein, J. Penciner, Y. Sternberg, and E. Peled. Lithium Sulfur Battery – Oxidation/reduction mechanisms of polysulfides in THF solutions. Journal of The Electrochemical Society 135, 1045–1048 (1988). R. Elazari, G. Salitra, Y. Talyosef, J. Grinblat, C. Scordilis-Kelley, A. Xiao, J. Affinito, and D. Aurbach. Morphological and Structural Studies of Composite Sulfur Electrodes upon Cycling by HRTEM, AFM and Raman Spectroscopy. Journal of The Electrochemical Society 157, A1131–A1138 (2010). M. R. Busche, P. Adelhelm, H. Sommer, H. Schneider, K. Leitner, and J. Janek. Systematical electrochemical study on the parasitic shuttle-effect in lithium-sulfur-cells at different temperatures and different rates. Journal of Power Sources 259, 289–299 (2014). C. Forgez, D. V. Do, G. Friedrich, M. Morcrette, and C. Delacourt. Thermal modeling of a cylindrical LiFePO4/graphite lithium-ion battery. Journal of Power Sources 195, 2961–2968 (2010). N. Tanaka and W. G. Bessler. Numerical investigation of kinetic mechanism for runaway thermo-electrochemistry in lithium-ion cells. Solid State Ionics 262, 70–73 (2014). N. Tanaka. Modeling and Simulation of Thermo-Electrochemistry of Thermal Runaway in Lithium-Ion Batteries. Ph.D. thesis, Universität Stuttgart (August 2014). http: //elib.uni-stuttgart.de/opus/volltexte/2015/10112/. Supervisor: W. G. Bessler. H.-L. Wu, L. A. Huff, and A. A. Gewirth. In Situ Raman Spectroscopy of Sulfur Speciation in Lithium-Sulfur Batteries. ACS Applied Materials & Interfaces 7, 1709– 1719 (2015). M. Barghamadi, A. Kapoor, and C. Wen. A Review on Li-S Batteries as a High Efficiency Rechargeable Lithium Battery. Journal of The Electrochemical Society 160, A1256–A1263 (2013). L. F. Nazar, M. Cuisinier, and Q. Pang. Lithium-sulfur batteries. MRS Bulletin 39, 436–442 (5 2014). 177

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