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      High-Performance 2.6 V Aqueous Asymmetric Supercapacitors based on In Situ Formed Na0.5 MnO2 Nanosheet Assembled Nanowall Arrays

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          Sodium-Ion Batteries

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            Liquid-mediated dense integration of graphene materials for compact capacitive energy storage.

            Porous yet densely packed carbon electrodes with high ion-accessible surface area and low ion transport resistance are crucial to the realization of high-density electrochemical capacitive energy storage but have proved to be very challenging to produce. Taking advantage of chemically converted graphene's intrinsic microcorrugated two-dimensional configuration and self-assembly behavior, we show that such materials can be readily formed by capillary compression of adaptive graphene gel films in the presence of a nonvolatile liquid electrolyte. This simple soft approach enables subnanometer scale integration of graphene sheets with electrolytes to form highly compact carbon electrodes with a continuous ion transport network. Electrochemical capacitors based on the resulting films can obtain volumetric energy densities approaching 60 watt-hours per liter.
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              Flexible solid-state supercapacitors: design, fabrication and applications

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                Author and article information

                Journal
                Advanced Materials
                Adv. Mater.
                Wiley
                09359648
                August 2017
                August 2017
                June 22 2017
                : 29
                : 32
                : 1700804
                Affiliations
                [1 ]School of Materials Science and Engineering; Nanjing University of Science and Technology; Nanjing 210094 China
                [2 ]Herbert Gleiter Institute of Nanoscience; Nanjing University of Science and Technology; Nanjing 210094 China
                [3 ]Key Laboratory of Soft Chemistry and Functional Materials; Nanjing University of Science and Technology; Ministry of Education; Nanjing 210094 China
                Article
                10.1002/adma.201700804
                e1dc9693-009c-474f-840e-84fda0616231
                © 2017

                http://doi.wiley.com/10.1002/tdm_license_1.1

                http://onlinelibrary.wiley.com/termsAndConditions#vor

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