Tytuł pozycji:
Diffusion and surface charge studies of waste cow dung derived highly porous carbon as a facile electrode for solid-state supercapacitors
- Tytuł:
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Diffusion and surface charge studies of waste cow dung derived highly porous carbon as a facile electrode for solid-state supercapacitors
- Autorzy:
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Sundriyal, Shashank
Gupta, Bhavana
Shrivastav, Vishal
Dubey, Prashant
Nogala, Wojciech
Hołdyński, Marcin
- Współwytwórcy:
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Institute of Physical Chemistry, Polish Academy of Sciences
Advanced Carbon Products and Metrology Department, CSIR-National Physical Laboratory (CSIR-NPL), New Delhi, India
- Data publikacji:
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2022-11-12
- Wydawca:
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Elsevier
- Słowa kluczowe:
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surface charge contribution
activated carbon
cow dung
supercapacitor
biowaste
- Język:
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angielski
- ISBN, ISSN:
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18790062
- Prawa:
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http://creativecommons.org/licenses/by-nc-nd/4.0/
- Linki:
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https://depot.ceon.pl/handle/123456789/22097  Link otwiera się w nowym oknie
- Dostawca treści:
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Repozytorium Centrum Otwartej Nauki
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Przejdź do źródła  Link otwiera się w nowym oknie
European Union, Ministry of Science and Higher Education
Carbon-based materials generated from biowaste have recently attracted interest due to their exceptional surface and conductive properties. Cow dung derived porous carbon (CDPC) with a 3D structure and linked pores is synthesized in this study, making it an alternative electrode for supercapacitors (SC). Herein, we studied the diffusion and surface charge contribution and their relationship with the scan rate. Diffusion charge contribution is more prevalent at lower scan rates. Furthermore, a large fraction of surface charge contribution of 69.2 % at a high scan rate of 100 mV/s indicates rapid electrochemical kinetics and hence high-rate performance even at higher current densities. In addition, utilizing a 1 M H2SO4 electrolyte, the CDPC electrode has attained a high specific capacitance value of 210 F/g at 0.5 A/g. Furthermore, symmetrical solid-state SC device displayed high energy density of 36 Wh/kg at good power density of 800 W/kg along with remarkable cyclic stability of 92.6 % after 10,000 charge-discharge cycles. Hence, these findings demonstrate that investigating surface and diffusion charge contributions opens up new avenues for tuning the supercapacitor performance.