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      Recent Breakthroughs in Supercapacitors Boosted by Nitrogen‐Rich Porous Carbon Materials

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          Abstract

          Featured with unique mechanical, electronic and chemical properties, nitrogen‐doped carbon materials have become the research hotspot of energy storage. As electrode materials in supercapacitors (SCs), N‐doped carbons have demonstrated intriguing flexibility and superb performances in a wide electrochemical window, equipped with versatile properties as both cathodes and anodes for constructing high voltage devices. Compared with limited doping level, N‐rich and porous carbon materials (NPCs) are of great desire to release the restricted properties of N species and obtain high specific capacitances (>600 F g −1), pushing the energy density towards the battery level without scarifying the capacitor‐level power ability. In this Research News we firstly discuss the key factors influencing the performance of NPC electrodes to disclose related charge storage mechanisms. In addition, the trade‐off among N‐content, porous structure and electrical conductivity is involved as well as electrochemical behaviors in different electrolytes. Also, various progressive developments are highlighted systematically ranging from asymmetric to symmetric and hybrid configurations, covering both aqueous and non‐aqueous systems. Finally, some stubborn and unsolved problems are summarized, with prospective research guidelines on NPC‐based SCs.

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          Nitrogen-doped mesoporous carbon of extraordinary capacitance for electrochemical energy storage.

          Carbon-based supercapacitors can provide high electrical power, but they do not have sufficient energy density to directly compete with batteries. We found that a nitrogen-doped ordered mesoporous few-layer carbon has a capacitance of 855 farads per gram in aqueous electrolytes and can be bipolarly charged or discharged at a fast, carbon-like speed. The improvement mostly stems from robust redox reactions at nitrogen-associated defects that transform inert graphene-like layered carbon into an electrochemically active substance without affecting its electric conductivity. These bipolar aqueous-electrolyte electrochemical cells offer power densities and lifetimes similar to those of carbon-based supercapacitors and can store a specific energy of 41 watt-hours per kilogram (19.5 watt-hours per liter).
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            Recent advancement of nanostructured carbon for energy applications.

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              Recent progress in supercapacitors: from materials design to system construction.

              Supercapacitors are currently attracting intensive attention because they can provide energy density by orders of magnitude higher than dielectric capacitors, greater power density, and longer cycling ability than batteries. The main challenge for supercapacitors is to develop them with high energy density that is close to that of a current rechargeable battery, while maintaining their inherent characteristics of high power and long cycling life. Consequently, much research has been devoted to enhance the performance of supercapacitors by either maximizing the specific capacitance and/or increasing the cell voltage. The latest advances in the exploration and development of new supercapacitor systems and related electrode materials are highlighted. Also, the prospects and challenges in practical application are analyzed, aiming to give deep insights into the material science and electrochemical fields.
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                Author and article information

                Contributors
                zhouzhen@nankai.edu.cn
                Journal
                Adv Sci (Weinh)
                Adv Sci (Weinh)
                10.1002/(ISSN)2198-3844
                ADVS
                Advanced Science
                John Wiley and Sons Inc. (Hoboken )
                2198-3844
                15 February 2017
                August 2017
                : 4
                : 8 ( doiID: 10.1002/advs.v4.8 )
                : 1600408
                Affiliations
                [ 1 ] School of Materials Science and Engineering Herbert Gleiter Institute of Nanoscience Nanjing University of Science and Technology Xiaolingwei 200 Nanjing 210094 China
                [ 2 ] Tianjin Key Laboratory of Metal and Molecule Based Material Chemistry Institute of New Energy Material Chemistry Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) School of Materials Science and Engineering National Institute for Advanced Materials Nankai University Tianjin 300350 China
                Author notes
                Article
                ADVS288
                10.1002/advs.201600408
                5566231
                f4c06641-ec01-481a-a4ad-450e5ac4cd7a
                © 2017 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim

                This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

                History
                : 15 October 2016
                : 03 December 2016
                Page count
                Figures: 8, Tables: 0, Pages: 10, Words: 7282
                Funding
                Funded by: NSFC
                Award ID: 51602157
                Award ID: 21421001
                Categories
                Research News
                Research News
                Custom metadata
                2.0
                advs288
                August 2017
                Converter:WILEY_ML3GV2_TO_NLMPMC version:5.1.7 mode:remove_FC converted:22.08.2017

                supercapacitors,n‐rich porous carbon,energy density,power desity,li‐ion capacitors

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