Facile Multivalent Redox Chemistries in Water-in-Bisalt Hydrogel Electrolytes for Hybrid Energy Storage Full Cells

2020 
High capacity electrode materials have been investigated to overcome the low energy density of electrochemical capacitors, but there are still issues arising from trade-off between charge storage capacity and kinetics, efficiency, or stability. Herein, we describe multivalent sulfur redox chemistry for high power and energy efficiency of hybrid energy storage full cells, where nitrogen-incorporated nanoporous carbon/nanosulfur (N-NC/nS) and lithium manganese oxide are configured into negative and positive electrodes, respectively, using water-in-bisalt (WIBS) soaked polyacrylic acid hydrogel electrolyte. As confirmed by the major contribution of surface redox capacity to the total capacity, low activation energy, high exchange current density, and fast charge transfer, the N-NC/nS achieves the facile surface redox kinetics arising from the hierarchical porosity, nanoscale confinement of nS, and high ionic conductivity of WIBS-soaked polymeric hydrogels. The resulting full cells deliver capacitor-like high...
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