4.6 Article

Synergistic design of aN, O co-doped honeycomb carbon electrode and an ionogel electrolyte enabling all-solid-state supercapacitors with an ultrahigh energy density

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 7, Issue 2, Pages 816-826

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8ta10406a

Keywords

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Funding

  1. National Natural Science Foundation of China [21875165, 21473122, 21501135, 21703161, 51772216]
  2. Science and Technology of Shanghai Municipality, China [14DZ2261100]
  3. Fundamental Research Funds for the Central Universities

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Significantly boosting the energy densities of supercapacitors without compromising their power densities is of paramount importance for practical applications, but still faces great challenges. Herein, we report an ultrahigh-energy-density solid-state supercapacitor enabled by synergistical design of a N, O co-doped honeycomb porous carbon (HPC) electrode and an ionogel electrolyte. HPC is synthesized through the co-assembly of melamine/formaldehyde with silica spheres, and shows an ultrahigh surface area (2379 m(2) g(-1)) coupled with a 3D interconnected macro-, meso- and microporous structure, and high-level redox-active N/O dopants (6.90 and 10.17 wt%). Benefiting from such merits, the HPC electrode yields an extremely high capacitance of 533 F g(-1) at 0.5 A g(-1) in an alkaline electrolyte, together with superior cycling stability with 92.1% capacitance retention after 20000 cycles at 5 A g(-1). HPC assembled supercapacitors deliver energy outputs of 12.8 and 26.6 W h kg(-1) using KOH and Na2SO4 electrolytes, respectively. More attractively, a HPC-fabricated all-solid-state symmetric device based on the use of a well-designed, polymer-gel supported ionic liquid electrolyte achieves an ultrahigh energy density of 94.1 W h kg(-1), which is the highest value among those of previously reported supercapacitors of the same type, and an excellent cycling stability (91.5% retention over 10000 cycles). This study highlights promising prospects of developing solid-state energy storage systems of high energy-power supply.

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