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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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[58] W. G. Bessler, S. Gewies, and M. Vogler. A new framework for physically based modeling of solid oxide fuel cells. Electrochimica Acta 53, 1782–1800 (2007). [59] J. P. Neidhardt, D. N. Fronczek, T. Jahnke, T. Danner, B. Horstmann, and W. G. Bessler. A flexible framework for modeling multiple solid, liquid and gaseous phases in batteries and fuel cells. Journal of The Electrochemical Society 159, A1528–A1542 (2012). [60] U.S. Department of Energy. The Batteries for Advanced Transportation Technolo- gies (BATT) Program. consortium website. https://batt.lbl.gov/. Retrieved 4/23/2014. [61] H. Tao, Z. Feng, H. Liu, X. Kan, and P. Chen. Reality and future of rechargeable lithium batteries. The Open Materials Science Journal 5, 204–214 (2011). [62] M.-K. Song, E. J. Cairns, and Y. Zhang. Lithium/sulfur batteries with high specific energy: old challenges and new opportunities. Nanoscale 5, 2186–2204 (2013). [63] D. Marmorstein. Solid State Lithium/Sulfur Batteries for Electric Vehicles: Electro- chemical and Spectroelectrochemical Investigations. Ph.D. thesis, University of Cali- fornia, Berkeley (2002). Supervisor: E. J. Cairns. [64] J. Hassoun and B. Scrosati. Moving to a Solid-State Configuration: A Valid Approach to Making Lithium-Sulfur Batteries Viable for Practical Applications. Advanced Ma- terials 22, 5198–5201 (2010). [65] Z. Lin, Z. Liu, W. Fu, N. J. Dudney, and C. Liang. Lithium Polysulfidophosphates: A Family of Lithium-Conducting Sulfur-Rich Compounds for Lithium-Sulfur Batteries. Angewandte Chemie International Edition 52, 7460–7463 (2013). [66] M. Agostini, Y. Aihara, T. Yamada, B. Scrosati, and J. Hassoun. A lithium-sulfur battery using a solid, glass-type P2S5-Li2S electrolyte. Solid State Ionics 244, 48–51 (2013). [67] L. Ji, M. Rao, H. Zheng, L. Zhang, Y. Li, W. Duan, J. Guo, E. J. Cairns, and Y. Zhang. Graphene Oxide as a Sulfur Immobilizer in High Performance Lithium/Sulfur Cells. Journal of the American Chemical Society 133, 18522–18525 (2011). [68] Y. Cao, X. Li, I. A. Aksay, J. Lemmon, Z. Nie, Z. Yang, and J. Liu. Sandwich-type functionalized graphene sheet-sulfur nanocomposite for rechargeable lithium batteries. Physical Chemistry Chemical Physics 13, 7660–7665 (2011). 158

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