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Mechanism for the Stable Performance of Sulfur-Copolymer Cathode in Lithium-Sulfur Battery Studied by Solid-State NMR Spectroscopy:Chemistry of Materials Link: Autor/in: Erscheinungsjahr: 2018 Medientyp: Text Schlagworte: Amorphous materials Cathodes Chain length Chains Electrochemistry Electrolytes Light polarization Lithium batteries Lithium compounds Nuclear magnetic resonance spectroscopy Polysulfides Quantum theory Amorphous structures Electrochemical cycling Energy storage systems High reversible capacities Mechanistic studies Quantum calculation Solid-state NMR spectroscopy Structural evolution Lithium sulfur batteries Beschreibung: Rechargeable lithium-sulfur (Li-S) batteries have drawn significant attention as next-generation energy storage systems. Sulfur-copolymers are promising alternative cathode materials to elemental sulfur in Li-S batteries as they provide high reversible capacity. However, the redox mechanisms of these materials are not well understood owing to the difficulty in characterizing amorphous structures and identifying individual ionic species. Here, we use solid-state NMR techniques together with electrochemistry experiments and quantum calculations to investigate the structural evolution of the prototype S-copolymer cathodes, sulfur-diisopropenylbenzene copolymers (poly(S-co-DIB)), during cycling. We demonstrate that polysulfides with different chain lengths can be distinguished by 13C and 7Li NMR spectroscopy, revealing that the structure of the copolymers can be tuned in terms of polysulfide chain lengths and resulting reaction pathways during electrochemical cycling. Our results show that the improved cyclability of these cathodes originates from the role of organic moieties acting as anchors that fixate polysulfides to the polymeric network during cycling, thus preventing their diffusion into the electrolyte. We provide a new methodological concept for the mechanistic studies to track the intermediate species and phase transition in Li-S batteries. © 2018 American Chemical Society. Lizenz: info:eu-repo/semantics/closedAccess Quellsystem: Forschungsinformationssystem der UHH Interne Metadaten Quelldatensatz oai:www.edit.fis.uni-hamburg.de:publications/7b880f46-d613-452d-9574-bc9803f1f19d