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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 Entry 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 229 Battery Attributes N-doped carbon hollow spheres SnS2 nanoparticles on exterior (sulfur loading of about 3 mg cm−2) Double-shelled hollow polyhedron of nitrogen-doped carbon nanodots (Co-NC@Co9S8/NPC) (sulfur loading 4.5 mg cm−2) Infusion of sulfur into hollow pore carbon structures Nitrogen-doped carbon nanotubes in tandem with metallic cobalt nanoparticles Performance of prior systems using N-doped B,N co-doped C nanotube with Co nanoparticles as sulfur host for cathode Cells with phosphorous/oxygen co-doped into mesoporous carbon bowls (sulfur loading of 5.02 mg cm−2) Sb2Se3-x as a polysulfide barrier in sulfur electrochemical conversion Cathode assembly involving co-melting of sulfur and selenium Inorganic separators comprising anodized aluminum oxide membranes Graphdiyne nanosheets on polypropylene as a separator Poly(sulfur-co-1-vinyl-3-allylimidazolium bromide as a cathode MnO2 nanoparticles embedded in polyaniline (PANI) as a scaffold for sulfur cathode Table 1. Cont. Coulombic Efficiency (%) - - 98.9 56 60 20 - 84.8 - 52 86.5 - 49.6 - - 90 - - After How Many Cycles? 200 2000 500 1000 500 500 200 400 - 800 500 100 480 - 500 900 100 500 500 - 300 600 Charge Density (C) 0.2 0.5 2 - 1 - 0.1 1 1 - 1 - 2 0.1 Discharge Capacity (mAh g−1) 1344 - - - - 1160 1008 897 489 - 800 - 1262 Ref. [53] [54] [55] [56] [57] [58] [59] [60] [61] [62] [63] [64] [65] [66] [67] Cathode conductivity using polypyrrole and tin oxide nanoparticles 90 Mesoporous silica framework with polypyrrole having NiO - nanoparticles in it a polymer-encapsulated sulfur cathode 74 1 412 - - 0.5 1195 2 640 1 - 5 383.7 - 700 2 - 75

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