Supercapacitors based on Ti3C2Tx MXene extracted from supernatant and current collectors passivated by CVD-graphene

Суперконденсаторы на основе MXene Ti3C2Tx, выделенного из супернатанта, с токосъёмниками, пассивированными графеном, полученным методом CVD
Sunil Kumar, Malik Abdul Rehman, Sungwon Lee, Minwook Kim, Hyeryeon Hong, Jun‐Young Park, Yongho Seo
2021-01-12

CVD-grown grapheneTi3C2Tx MXenecyclic stabilityspecific capacitancesupercapacitors
Abstract An ultrahigh capacity supercapacitor is fabricated using a nano-layered MXene as an active electrode material, and Ni-foil is used as a current collector. The high-quality Ti3C2Tx obtained from supernatant during etching and washing processes improves the specific capacitance significantly. As another strategy, the surface of Ni-foil is engineered by coating chemical vapor deposition-grown graphene. The graphene grown directly on the Ni-foil is used as a current collector, forming the electrode structure of Ti3C2Tx/graphene/Ni. The surface passivation of the current collectors has a high impact on charge-transfer, which in turn increases the capacitance of the supercapacitors. It is found that the capacitance of the graphene-based supercapacitors is more than 1.5 times of the capacitance without graphene. A high specific capacitance, ~ 542 F/g, is achieved at 5 mV/s scan rate based on cyclic voltammetry analysis. Also, the graphene-based supercapacitor exhibits a quasi-rectangular form in cyclic voltammetry curves and a symmetric behavior in charge/discharge curves. Furthermore, cyclic stability up to 5000 cycles is confirmed with high capacitance retention at high scan rate 1000 mV/s. A reduced series resistance with a high limit capacitance is revealed by equivalent circuit analysis with the Nyquist plot.
1
A high specific capacitance of approximately 542 F/g is achieved at a 5 mV/s scan rate.
2
CVD-grown graphene directly coating Ni-foil passivates the current collector and enhances charge transfer in Ti3C2Tx/graphene/Ni electrodes.
3
Graphene-based supercapacitors deliver more than 1.5 times the capacitance of devices without graphene.
4
High-quality Ti3C2Tx MXene collected from the etching and washing supernatant significantly improves supercapacitor specific capacitance.
5
Nyquist-plot equivalent-circuit analysis indicates reduced series resistance and a high limiting capacitance after graphene passivation.
6
The graphene-based device shows quasi-rectangular cyclic-voltammetry curves, symmetric charge–discharge behavior, and stable operation over 5000 cycles, with high retention at 1000 mV/s.

Ti3C2Tx MXene-based supercapacitors with CVD-graphene-passivated Ni-foil current collectors

The effects of supernatant-derived high-quality Ti3C2Tx and graphene surface passivation on capacitance, charge transfer, resistance, electrochemical behavior, and cycling stability

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2021-01-12
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Authors
Sunil Kumar
Malik Abdul Rehman
Sungwon Lee
Minwook Kim
Hyeryeon Hong
Jun‐Young Park
Yongho Seo
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