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      Ultrahigh Nitrogen Doping of Carbon Nanosheets for High Capacity and Long Cycling Potassium Ion Storage

      1 , 2 , 1 , 1 , 3 , 1 , 1
      Advanced Energy Materials
      Wiley

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          Pseudocapacitive oxide materials for high-rate electrochemical energy storage

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            Pseudocapacitive Contributions to Electrochemical Energy Storage in TiO2(Anatase) Nanoparticles

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              An ultrafast rechargeable aluminium-ion battery.

              The development of new rechargeable battery systems could fuel various energy applications, from personal electronics to grid storage. Rechargeable aluminium-based batteries offer the possibilities of low cost and low flammability, together with three-electron-redox properties leading to high capacity. However, research efforts over the past 30 years have encountered numerous problems, such as cathode material disintegration, low cell discharge voltage (about 0.55 volts; ref. 5), capacitive behaviour without discharge voltage plateaus (1.1-0.2 volts or 1.8-0.8 volts) and insufficient cycle life (less than 100 cycles) with rapid capacity decay (by 26-85 per cent over 100 cycles). Here we present a rechargeable aluminium battery with high-rate capability that uses an aluminium metal anode and a three-dimensional graphitic-foam cathode. The battery operates through the electrochemical deposition and dissolution of aluminium at the anode, and intercalation/de-intercalation of chloroaluminate anions in the graphite, using a non-flammable ionic liquid electrolyte. The cell exhibits well-defined discharge voltage plateaus near 2 volts, a specific capacity of about 70 mA h g(-1) and a Coulombic efficiency of approximately 98 per cent. The cathode was found to enable fast anion diffusion and intercalation, affording charging times of around one minute with a current density of ~4,000 mA g(-1) (equivalent to ~3,000 W kg(-1)), and to withstand more than 7,500 cycles without capacity decay.
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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Advanced Energy Materials
                Adv. Energy Mater.
                Wiley
                1614-6832
                1614-6840
                October 24 2019
                December 2019
                November 19 2019
                December 2019
                : 9
                : 47
                : 1902672
                Affiliations
                [1 ]Functional Thin Films Research CenterShenzhen Institutes of Advanced TechnologyChinese Academy of Sciences Shenzhen 518055 China
                [2 ]Nano Science and Technology InstituteUniversity of Science and Technology of China Suzhou 215123 China
                [3 ]Department of Physics and Materials ScienceCenter of Super‐Diamond and Advanced Films (COSDAF)City University of Hong Kong Hong Kong SAR China
                Article
                10.1002/aenm.201902672
                f9e0af48-fb5e-46d4-8260-9b81a190e168
                © 2019

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

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

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