Lithium-Sulfur Batteries: Advances and Trends

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Lithium-Sulfur Batteries: Advances and Trends ( lithium-sulfur-batteries-advances-and-trends )

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Electrochem 2020, 1 245 composition employing polar proteins like gelatin could be an important next step to fully delineating the structure–performance understanding. Electrochem 2020, 2, FOR PEER REVIEW 21 Figure 17. Demonstration of the source, structure, and utility in Li-S batteries for biopolymers. Figure 17. Demonstration of the source, structure, and utility in Li-S batteries for biopolymers. Reprinted with permission from reference [69]. Copyright 2020 John Wiley and Sons. Whereas Reprinted with permission from reference [69]. Copyright 2020 John Wiley and Sons. Whereas conventional Li-S batteries (a) and those employing zein (b) cannot effectively limit the shuttle effect, conventional Li-S batteries (a) and those employing zein (b) cannot effectively limit the shuttle effect, gelatin provides superior inhibition (c). This effect is attributed to the long sidechains in zein (d,f) gelatin provides superior inhibition (c). This effect is attributed to the long sidechains in zein (d, f) compared to the short sidechains in gelatin (e,g). compared to the short sidechains in gelatin (e, g). Another effort on interlayer fabrication employed carbon nanofibers, in conjunction with konjac glucomannan (KGM, Figure 18), a naturally-occurring polysaccharide that comes from the root of the konjac plant [101]. The polysaccharide-carbon nanofiber motif was made into an interwoven mat-like thin layer with carbon nanofibers (CNFs) with the hopes that it would effectively trap polysulfides.

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