Synthesis of Pseudocapacitive Polymer Chain Anode and Subnanoscale Metal Oxide Cathode for Aqueous Hybrid Capacitors Enabling High Energy and Power Densities along with Long Cycle Life

Aqueous electrochemical energy storages are of enormous attention due to their high safety and being environmentally friendly, but they must satisfy very challenging standards in energy and power densities over long repeated charging/discharging cycles. Herein, a strategy to realize high‐performance...

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Veröffentlicht in:Advanced energy materials 2018-04, Vol.8 (10), p.n/a
Hauptverfasser: Ock, Il Woo, Choi, Jae Won, Jeong, Hyung Mo, Kang, Jeung Ku
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Sprache:eng
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Zusammenfassung:Aqueous electrochemical energy storages are of enormous attention due to their high safety and being environmentally friendly, but they must satisfy very challenging standards in energy and power densities over long repeated charging/discharging cycles. Herein, a strategy to realize high‐performance aqueous hybrid capacitors (AHCs) using pseudocapacitive negative and positive electrodes is reported. Polymer chains, which are synthesized by in situ polymerization of polyaniline on reduced graphene sheets, show fiber‐like morphologies and the redox‐reactive surface area allowing high capacitance as anode materials even at a high current density of 20 A g−1 and a high loading of ≈6 mg cm−2. Additionally, subnanoscale metal oxide particles on graphene are utilized as pseudocapacitive cathode materials and they show the approximately threefold higher capacitance than nanocrystals of ≈10 nm. Assembling these polymer chain anode and subnanoscale metal oxide cathode in full‐cell AHCs is shown to give the high energy density exceeding those of aqueous batteries along with the ≈100% capacity retention over 100 000 redox cycles. Additionally, AHCs exhibit the high power density allowing ultrafast charging, so that the switching wearable display kit with two AHCs in series can be charged within several seconds by the flexible photovoltaic module and USB switching charger. Aqueous hybrid capacitors are reported in full‐cell devices with the energy density exceeding those of aqueous batteries, while achieving excellent capacity retention of nearly 100% over ultralong 100 000 charging/discharging cycles and the high power density exceeding those of aqueous batteries by about 100‐folds.
ISSN:1614-6832
1614-6840
DOI:10.1002/aenm.201702895