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A lithium-sulfur battery with a solution-mediated pathway

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A lithium-sulfur battery with a solution-mediated pathway ( a-lithium-sulfur-battery-with-solution-mediated-pathway )

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References 1. Larcher D, Tarascon JM. Towards greener and more sustainable batteries for electrical energy storage. Nat Chem 7, 19 (2014). 2. Eroglu D, Zavadil KR, Gallagher KG. Critical Link between Materials Chemistry and Cell- Level Design for High Energy Density and Low Cost Lithium-Sulfur Transportation Battery. J Electrochem Soc 162, A982-A990 (2015). 3. McCloskey BD. Attainable Gravimetric and Volumetric Energy Density of Li–S and Li Ion Battery Cells with Solid Separator-Protected Li Metal Anodes. J Phys Chem Lett 6, 4581- 4588 (2015). 4. Bruce PG, Freunberger SA, Hardwick LJ, Tarascon J-M. Li–O2 and Li–S batteries with high energy storage. Nat Mater 11, 19 (2011). 5. Pan H, et al. Non-encapsulation approach for high-performance Li–S batteries through controlled nucleation and growth. Nat Energy 2, 813-820 (2017). 6. Chen J, et al. Improving Lithium–Sulfur Battery Performance under Lean Electrolyte through Nanoscale Confinement in Soft Swellable Gels. Nano Lett 17, 3061-3067 (2017). 7. Cheng X-B, Huang J-Q, Zhang Q. Review—Li Metal Anode in Working Lithium-Sulfur Batteries. J Electrochem Soc 165, A6058-A6072 (2018). 8. Yan J, Liu X, Li B. Capacity Fade Analysis of Sulfur Cathodes in Lithium–Sulfur Batteries. Adv Sci 3, 1600101 (2016). 9. Pang Q, Liang X, Kwok CY, Kulisch J, Nazar LF. A Comprehensive Approach toward Stable Lithium–Sulfur Batteries with High Volumetric Energy Density. Adv Energy Mater 7, 1601630 (2017). 10. Pang Q, Shyamsunder A, Narayanan B, Kwok CY, Curtiss LA, Nazar LF. Tuning the electrolyte network structure to invoke quasi-solid state sulfur conversion and suppress lithium dendrite formation in Li–S batteries. Nat Energy 3, 783-791 (2018). Page 20 of 24

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