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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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[243] [244] [245] [246] [247] [248] [249] [250] [251] [252] [253] [254] J. N. Reimers. Algorithmic Improvements and PDE Decoupling, for the Simulation of Porous Electrode Cells. Journal of The Electrochemical Society 160, A811–A818 (2013). S. S. Jeong, Y. T. Lim, Y. J. Choi, G. B. Cho, K. W. Kim, H. J. Ahn, and K. K. Cho. Electrochemical properties of lithium sulfur cells using PEO polymer electrolytes prepared under three different mixing conditions. Journal of Power Sources 174, 745– 750 (2007). M. E. Wieser and T. B. Coplen. Atomic weights of the elements. Pure and Applied Chemistry 83, 359–396 (2009). IUPAC Technical Report. Wikipedia contributors. Polypropylene – Wikipedia, The Free Encyclope- dia. published online (2014). http://en.wikipedia.org/w/index.php?title= Polypropylene&oldid=631394105. Retrieved 10/29/2014. K. C. Mills (Ed.). Thermodynamic data for inorganic sulphides, selenides and tel- lurides, chapter Lithium–sulphur, pp. 413–414. First edition. Butterworths, Lon- don (1974). S. Hunsicker, R. O. Jones, and G. Ganteför. Rings and chains in sulfur cluster anions S− to S9−: Theory (simulated annealing) and experiment (photoelectron detachment). The Journal of Chemical Physics 102, 5917–5936 (1995). S. L. Candelaria, Y. Shao, W. Zhou, X. Li, J. Xiao, J.-G. Zhang, Y. Wang, J. Liu, J. Li, and G. Cao. Nanostructured carbon for energy storage and conversion. Nano Energy 1, 195–220 (2012). J. Gamby, P. L. Taberna, P. Simon, J. F. Fauvarque, and M. Chesneau. Studies and characterisations of various activated carbons used for carbon/carbon supercapacitors. Journal of Power Sources 101, 109–116 (2001). A. G. Pandolfo and A. F. Hollenkamp. Carbon properties and their role in superca- pacitors. Journal of Power Sources 157, 11–27 (2006). E. Frackowiak and F. Béguin. Carbon materials for the electrochemical storage of energy in capacitors. Carbon 39, 937–950 (2001). I. J. Ong and J. Newman. Double-Layer Capacitance in a Dual Lithium Ion Insertion Cell. Journal of The Electrochemical Society 146, 4360–4365 (1999). K. Kinoshita. Carbon: Electrochemical and Physicochemical Properties. First edition. Wiley-Interscience (1988). 174

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