Electrochemical synthesis of titanium nitride nanoparticles onto titanium foil for electrochemical supercapacitors with ultrafast charge/discharge
An ultrafast electrochemical supercapacitor that can deliver charge at a high rate of >1 V s −1 has great potential to supply instantaneous high power to electronic devices. Herein, a titanium nitride (TiN)-nanoparticle-modified titanium foil electrode is prepared by potentiostatic electrolysis a...
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Veröffentlicht in: | Sustainable energy & fuels 2020-05, Vol.4 (5), p.248-249 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | An ultrafast electrochemical supercapacitor that can deliver charge at a high rate of >1 V s
−1
has great potential to supply instantaneous high power to electronic devices. Herein, a titanium nitride (TiN)-nanoparticle-modified titanium foil electrode is prepared by potentiostatic electrolysis at +5 V in an ammoniacal solution of KCl. Spectroscopic and morphological analyses reveal the formation of crystalline, homogeneous, and pure TiN nanoparticles with an average size of ∼30 nm on the Ti foil. In a three-electrode system, the optimized TiN nanoparticle-based electrode exhibits excellent rate performance and reversibility up to 3 V s
−1
within the operational voltage window of 0-1.6 V. It delivers a high specific capacitance of ∼53.66 mF cm
−2
at 6.66 mA cm
−2
with capacity loss of only ∼3% after 10 000 charge/discharge cycles. A symmetric supercapacitor (SSC) based on the as-prepared optimized TiN nanoparticle-electrode also displays ultrafast charge/discharge characteristics with a specific capacitance of ∼44.10 mF cm
−2
at 6.66 mA cm
−2
. This ultrafast SSC has a low relaxation time constant of ∼2.80 ms and shows excellent capacity retention (95% after 10 000 charge-discharge cycles) with ∼100% coulombic efficiency. These results demonstrate the high electrochemical stability and reversibility of TiN nanoparticles, which are promising for the development of high-performance ultrafast supercapacitors.
A simple and low-cost electrochemical strategy is presented to construct TiN nanoparticles onto Ti foil for high-performance electrochemical supercapacitors with ultrafast charge/discharge capacity. |
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ISSN: | 2398-4902 2398-4902 |
DOI: | 10.1039/d0se00049c |