Direct growth of vanadium nitride nanosheets on carbon nanotube fibers as novel negative electrodes for high-energy-density wearable fiber-shaped asymmetric …

J Guo, Q Zhang, J Sun, C Li, J Zhao, Z Zhou, B He… - Journal of Power …, 2018 - Elsevier
J Guo, Q Zhang, J Sun, C Li, J Zhao, Z Zhou, B He, X Wang, P Man, Q Li, J Zhang, L Xie…
Journal of Power Sources, 2018Elsevier
Significant efforts have been recently devoted to constructing high-performance fiber-
shaped asymmetric supercapacitors. However, it is still a paramount challenge to develop
high-energy-density fiber-shaped asymmetric supercapacitors for practical applications in
portable and wearable electronics. This work reports a simple and efficient method to
directly grow vanadium nitride nanosheets on carbon nanotube fibers as advanced negative
electrodes with a high specific capacitance of 188 F/cm 3 (564 mF/cm 2). Taking advantage …
Abstract
Significant efforts have been recently devoted to constructing high-performance fiber-shaped asymmetric supercapacitors. However, it is still a paramount challenge to develop high-energy-density fiber-shaped asymmetric supercapacitors for practical applications in portable and wearable electronics. This work reports a simple and efficient method to directly grow vanadium nitride nanosheets on carbon nanotube fibers as advanced negative electrodes with a high specific capacitance of 188 F/cm3 (564 mF/cm2). Taking advantage of their attractive structure, we successfully fabricated a fiber-shaped asymmetric supercapacitor device with a maximum operating voltage of 1.6 V by assembling the vanadium nitride/carbon nanotube fiber negative electrode with the Zinc-Nickel-Cobalt ternary oxides nanowire arrays positive electrode. Due to the excellent synergistic effects between positive and negative electrodes, a remarkable specific capacitance of 50 F/cm3 (150 mF/cm2) and an outstanding energy density of 17.78 mWh/cm3 (53.33 μWh/cm2) for our fiber-shaped asymmetric supercapacitor can be achieved. Furthermore, the as-assembled fiber-shaped asymmetric supercapacitor device has excellent mechanical flexibility in that 91% of the capacitance retained after bending 90° for 3000 times. Thus, this work exploits a pathway to construct high-energy-density fiber-shaped asymmetric supercapacitor for next-generation portable and wearable electronics.
Elsevier
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