4.6 Article

Preparation of Ti3+ self-doped TiOxNRs/rGO composite: application in supercapacitors

Journal

JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
Volume 32, Issue 14, Pages 19947-19957

Publisher

SPRINGER
DOI: 10.1007/s10854-021-06519-9

Keywords

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Funding

  1. Henan Province Science and Technology Project [212102210584]
  2. Cultivation Project of Young Key Teachers in Universities of Henan Province - Young Key Teachers of Zhongyuan Institute of Technology in 2019 [350, 60]

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Ti3+ self-doped nano titanium dioxide rods were added into graphene nanosheets to enhance capacitor performance, with the composite showing the best capacitance performance and cycle life at a specific addition level.
The characteristics of large surface area, high conductivity and mechanical flexibility performances make graphene suitable for high power next-generation energy storage devices. However, it only stores charge through double-layer capacitors, which limits its energy storage mechanism, resulting in a limited specific capacitance of graphene. In this paper, black Ti3+ self-doped nano titanium dioxide rods (TiO(x)NRs) were introduced into graphene nanosheets to improve capacitor performance. The results manifest that when 20 wt% TiO(x)NRs were added into the TiO(x)NRs/rGO composite, the capacitance performance is the best and the specific capacitance value is 149.5 F g(-1) at the scanning speed of 40 mV s(-1). In addition, the specific capacitance of the electrode prepared with the TiO(x)NRs/rGO composite still maintains the original 89.57% after 2000 charge-discharge cycles and has a good cycle life at a current density of 1 A g(-1). In short, the TiO(x)NRs/rGO composite is a prospect and potential material for supercapacitor electrodes in the future.

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