4.8 Article

Ultrahigh-rate and high-density lithium-ion capacitors through hybriding nitrogen-enriched hierarchical porous carbon cathode with prelithiated nnicrocrystalline graphite anode

Journal

NANO ENERGY
Volume 15, Issue -, Pages 43-53

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.nanoen.2015.03.001

Keywords

Lithium-ion capacitor; Hierarchical porous carbon; Prelithiated microcrystalline graphite; Ultrahigh rate; High density

Funding

  1. National Natural Science Foundation of China [51232005, 50972064]
  2. 973 Program of China [2014CB932401]
  3. Ministry of Science and Technology [2010DFA72760]

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Lithium-ion capacitors (LICs) are novel advanced electrochemical energy storage (EES) systems integrating both battery and capacitor functions. Most efforts for developing high-power LICs are currently dedicated to nanostructure design of battery-type anodes, which in general results in low packing densities and cannot fundamentally improve the slow Faradaic reaction. Up to now, little attention has been focused on the effects of porous carbon cathodes and the reasonable matching of cathode/anode on the power performance of LICs. Herein, a novel nitrogen-enriched mesoporous carbon nanospheres/graphene (N-GMCS) nanocomposite is demonstrated, which shows simultaneously hierarchical porous structure, 3D conductive network, as well as very high mass density. When such N-GMCS cathode is coupled with prelithiated microcrystalline graphite (PLMG) anode, the integrated device shows quite high packing density which is highly desirable in EES systems. In particular, the PLMG anode in N-GMCS//PLMG system breaks the limitation of slow Faradaic reaction and lithium-ion bulk diffusion, providing an ultrafast capacitor-like electrochemical response. Quite attractive maximum energy density (80W h kg(-1), 68.6W h L-1) and state-of-the-art maximum power density (352 kW kg 1, 292 kW L-1) can be achieved in N-GMCS/ /PLMG, which are 5 and 2.8 times as large as those of the supercapacitor counterpart, respectively. (C) 2015 Elsevier Ltd. All rights reserved.

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