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33.Xu R, Lu J, Amine K. Progress in Mechanistic Understanding and Characterization Techniques of Li-S Batteries. Adv Energy Mater 5, 1500408-n/a (2015). 34. Hagen M, et al. In-Situ Raman Investigation of Polysulfide Formation in Li-S Cells. J Electrochem Soc 160, A1205-A1214 (2013). 35. Pascal TA, et al. X-ray Absorption Spectra of Dissolved Polysulfides in Lithium–Sulfur Batteries from First-Principles. J Phys Chem Lett 5, 1547-1551 (2014). 36. Wujcik KH, Wang DR, Pascal TA, Prendergast D, Balsara NP. In Situ X-ray Absorption Spectroscopy Studies of Discharge Reactions in a Thick Cathode of a Lithium Sulfur Battery. J Electrochem Soc 164, A18-A27 (2017). 37. Zhang S. Improved Cyclability of Liquid Electrolyte Lithium/Sulfur Batteries by Optimizing Electrolyte/Sulfur Ratio. Energies 5, 5190 (2012). 38. Zhang L, Sun D, Feng J, Cairns EJ, Guo J. Revealing the Electrochemical Charging Mechanism of Nanosized Li2S by in Situ and Operando X-ray Absorption Spectroscopy. Nano Lett 17, 5084-5091 (2017). 39. Liang X, Hart C, Pang Q, Garsuch A, Weiss T, Nazar LF. A highly efficient polysulfide mediator for lithium–sulfur batteries. Nat Commun 6, 5682 (2015). 40. Yang X, et al. Promoting the Transformation of Li2S2 to Li2S: Significantly Increasing Utilization of Active Materials for High-Sulfur-Loading Li–S Batteries. Adv Mater 31, 1901220 (2019). 41. Pascal TA, Wujcik KH, Wang DR, Balsara NP, Prendergast D. Thermodynamic origins of the solvent-dependent stability of lithium polysulfides from first principles. Phys Chem Chem Phys 19, 1441-1448 (2017). 42. Su Y-S, Fu Y, Cochell T, Manthiram A. A strategic approach to recharging lithium-sulphur batteries for long cycle life. Nat Commun 4, 2985 (2013). 43. Li M, et al. A Lithium–Sulfur Battery using a 2D Current Collector Architecture with a Large-Sized Sulfur Host Operated under High Areal Loading and Low E/S Ratio. Adv Mater 30, 1804271 (2018). Page 23 of 24PDF Image | A lithium-sulfur battery with a solution-mediated pathway
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