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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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[102] C. Barchasz, J.-C. Leprêtre, S. Patoux, and F. Alloin. Electrochemical properties of ether-based electrolytes for lithium/sulfur rechargeable batteries. Electrochimica Acta 89, 737–743 (2013). [103] J. Scheers, S. Fantini, and P. Johansson. A review of electrolytes for lithium-sulphur batteries. Journal of Power Sources 255, 204–218 (2014). [104] L. Suo, Y.-S. Hu, H. Li, M. Armand, and L. Chen. A new class of Solvent-in-Salt electrolyte for high-energy rechargeable metallic lithium batteries. Nature Communi- cations 4:1481 (2013). [105] N. S. A. Manan, L. Aldous, Y. Alias, P. Murray, L. J. Yellowlees, M. C. Lagunas, and C. Hardacre. Electrochemistry of Sulfur and Polysulfides in Ionic Liquids. The Journal of Physical Chemistry B 115, 13873–13879 (2011). [106] J.-W. Park, K. Ueno, N. Tachikawa, K. Dokko, and M. Watanabe. Ionic Liquid Electrolytes for Lithium-Sulfur Batteries. The Journal of Physical Chemistry C 117, 20531–20541 (2013). [107] S. Xiong, K. Xie, E. Blomberg, P. Jacobsson, and A. Matic. Analysis of the solid electrolyte interphase formed with an ionic liquid electrolyte for lithium-sulfur batteries. Journal of Power Sources 252, 150–155 (2014). [108] A. Matic and B. Scrosati. Ionic liquids for energy applications. MRS Bulletin 38, 533–537 (2013). [109] J. H. Shin and E. J. Cairns. N-Methyl-(n-butyl)pyrrolidinium bis(trifluoro- methanesulfonyl)imide-LiTFSI-poly(ethylene glycol) dimethyl ether mixture as a Li/S cell electrolyte. Journal of Power Sources 177, 537–545 (2008). [110] J. Pitawala, M. A. Navarra, B. Scrosati, P. Jacobsson, and A. Matic. Structure and properties of Li-ion conducting polymer gel electrolytes based on ionic liquids of the pyrrolidinium cation and the bis(trifluoromethanesulfonyl)imide anion. Journal of Power Sources 245, 830–835 (2014). [111] W. Zheng, Y. W. Liu, X. G. Hu, and C. F. Zhang. Novel nanosized adsorbing sulfur composite cathode materials for the advanced secondary lithium batteries. Electrochim- ica Acta 51, 1330–1335 (2006). [112] L. Yuan, H. Yuan, X. Qiu, L. Chen, and W. Zhu. Improvement of cycle property of sulfur-coated multi-walled carbon nanotubes composite cathode for lithium/sulfur bat- teries. Journal of Power Sources 189, 1141–1146 (2009). 162

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