4.6 Article

Flexible quasi-solid-state 2.4 V aqueous asymmetric microsupercapacitors with ultrahigh energy density

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 6, 期 41, 页码 20145-20151

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8ta07727d

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资金

  1. National Natural Science Foundation of China [51522211, 51602339, 51703241, U1710122]
  2. Key Research Program of Frontier Science of Chinese Academy of Sciences [QYZDB-SSW-SLH031]
  3. Natural Science Foundation of Shanghai [16ZR1439400, 17ZR1447700]
  4. Natural Science Foundation of Jiangsu Province, China [BK20160399, BK20140392]
  5. Transformation of Scientific and Technological Achievements in Jiangsu Province [BA2016026]
  6. Postdoctoral Foundation of Jiangsu Province [1601065B]
  7. Science and Technology Project of Nanchang [2017-SJSYS-008]
  8. Singapore Ministry of Education Academic Research Fund [MOE2015-T2-1-066, MOE2015-T2-2-010, RG85/16]
  9. Nanyang Technological University [M4081515]

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Extensive research efforts have recently been devoted to the development of high-energy-density flexible microsupercapacitors (MSCs) to satisfy the rapidly increasing demands for wearable and portable electronics. However, the widespread application of MSCs in high-energy-consuming personal electronic devices has been hindered by their low operating voltages and unsatisfactory specific capacitances. Here, we demonstrate a simple and cost-effective cut-and-transfer method to fabricate flexible quasi-solid-state 2.4 V aqueous asymmetric MSCs (AMSCs) by employing hierarchical Na-MnOx nanosheets on 3D nitrogen-doped carbon fibers as the positive electrode and VN nanosheet arrays as the negative electrode. The resulting AMSCs take advantage of the high specific capacitance and wide electrochemical potential spectrum of the electrode materials to yield a remarkable specific capacitance of 109.5 mF cm(-2) and admirable energy density of 87.62 mu W h cm(-2), outperforming most previously reported MSCs. Thus, this work provides a new way to develop high-voltage aqueous AMSCs for next-generation wearable energy-storage devices.

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