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Asymmetric carbon nanotube–MnO<sub>2</sub>two-ply yarn supercapacitors for wearable electronics
100
Citations
41
References
2014
Year
Materials ScienceSupercapacitorsChemical EngineeringEngineeringNanoengineeringBattery Electrode MaterialsNanomaterialsAsymmetric ArchitectureAdvanced Electrode MaterialWearable ElectronicsEnergy StorageSupercapacitorBatteriesElectrochemical Double Layer CapacitorNanotubesCarbon NanotubesAsymmetric SupercapacitorElectrochemistry
Strong and flexible two-ply carbon nanotube yarn supercapacitors are electrical double layer capacitors that possess relatively low energy storage capacity. Pseudocapacitance metal oxides such as MnO₂ are well known for their high electrochemical performance and can be coated on carbon nanotube yarns to significantly improve the performance of two-ply carbon nanotube yarn supercapacitors. We produced a high performance asymmetric two-ply yarn supercapacitor from as-spun CNT yarn and CNT@Mn₂2 composite yarn in aqueous electrolyte. The as-spun CNT yarn serves as negative electrode and the CNT@MnO₂ composite yarn as positive electrode. This asymmetric architecture allows the operating potential window to be extended from 1.0 to 2.0 V and results in much higher energy and power densities than the reference symmetric two-ply yarn supercapacitors, reaching 42.0 Wh kg(-1) at a lower power density of 483.7 W kg(-1), and 28.02 Wh kg(-1) at a higher power density of 19,250 W kg(-1). The asymmetric supercapacitor can sustain cyclic charge-discharge and repeated folding/unfolding actions without suffering significant deterioration of specific capacitance. The combination of high strength, flexibility and electrochemical performance makes the asymmetric two-ply yarn supercapacitor a suitable power source for flexible electronic devices for applications that require high durability and wearer comfort.
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