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Boosting the volumetric energy of supercapacitors using polytetrafluoroethylene pyrolysis gas
Increasing the volumetric energy of carbon-based supercapacitors is of practical importance for the advancement of high-powered energy storage. Herein, we use the gases evolved from polytetrafluoroethylene pyrolysis at 800 °C to fluorine-dope an activated carbon, and directly synthesize a fluorine-d...
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Published in: | Journal of power sources 2019-02, Vol.414, p.76-85 |
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Main Authors: | , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Increasing the volumetric energy of carbon-based supercapacitors is of practical importance for the advancement of high-powered energy storage. Herein, we use the gases evolved from polytetrafluoroethylene pyrolysis at 800 °C to fluorine-dope an activated carbon, and directly synthesize a fluorine-doped highly porous graphite in the same environment. As supercapacitor materials in organic electrolyte, both resultant fluorine-doped carbons outperform their non-doped counterparts, delivering up to 40% gain in cell volumetric energy at high power cycling. F-doping increases volumetric capacitance (F cm−3) via increase in “real” areal capacity (uF cm−2) and/or increase in “real” volumetric surface area (m2 cm−3), and increases electron conductivity. Considering current collector and separator volume fractions, cells containing the fluorine-doped activated carbon electrode films of 100 and 50 μm deliver an impressive 12.9 Wh L−1 at 0.1 kW L−1 and 6.7 Wh L−1 at 2.15 kW L−1 respectively. We conclude that the gas-based F-doping method affords an effective and less hazardous route to produce fluorine-doped carbons for increased volumetric energy storage.
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•Polytetrafluoroethylene (PTFE) pyrolysis gas effectively F-dopes carbon.•F-doping increases electrical conductivity σ (S cm−1).•Up to 40% increase in cell volumetric energy in organic electrolyte is achieved.•F-doping increases real areal capacitance (uF cm−2).•F-doping increases cell volumetric energy at high power. |
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ISSN: | 0378-7753 1873-2755 |
DOI: | 10.1016/j.jpowsour.2018.12.060 |