4.8 Article

High Energy and Power Zinc Ion Capacitors: A Dual-Ion Adsorption and Reversible Chemical Adsorption Coupling Mechanism

Journal

ACS NANO
Volume 16, Issue 2, Pages 2877-2888

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c09936

Keywords

hierarchical porosity; dual-ion adsorption; chemical adsorption; high energy density; zinc ion capacitors

Funding

  1. National Natural Science Foundation of China [51763018, 52073137]
  2. Natural Science Foundation of Jiangxi Province [20192BCB23001, 20203BDH80W011]

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This study successfully enhances the storage capacity and kinetics of zinc ion capacitors by using special materials to fabricate porous carbon. The optimized rubidium-activated porous carbon-based ZIC exhibits high specific energy and peak power density, demonstrating great potential.
Zinc ion capacitors (ZICs) hold great promise in large-scale energy storage by inheriting the superiorities of zinc ion batteries and supercapacitors. However, the mismatch of kinetics and capacity between a Zn anode and a capacitive-type cathode is still the Achilles' heel of this technology. Herein, porous carbons are fabricated by using tetra-alkali metal pyromellitic acid salts as precursors through a carbonization/self-activation procedure for enhancing zinc ion storage. The optimized rubidium-activated porous carbon (RbPC) is verified to hold immense surface area, suitable porosity structure, massive lattice defects, and luxuriant oxygen functional groups. These structural and compositional merits endow RbPC with the promoted zinc ion storage capability and more matchable kinetics and capacity with a Zn anode. Consequently, RbPC-based ZIC delivers a high specific energy of 178.2 W h kg(-1) and a peak power density of 72.3 kW kg(-1). A systematic ex situ characterization analysis coupled with in situ electrochemical quartz crystal microbalance tests reveal that the preeminent zinc ion storage properties are ascribed to the synergistic effect of the dual-ion adsorption and reversible chemical adsorption of RbPC. This work provides an efficient strategy to the rational design and construction of high-performance electrodes for ZICs and furthers the fundamental understanding of their charge storage mechanisms or extends the understanding toward other electrochemical energy storage devices.

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