Cargando…

Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device

In the current study, we have explored the coupling of Bi(2)O(3) negative electrode and MnO(2) positive electrode materials as an asymmetric faradaic assembly for a high-performance hybrid electrochemical energy storage device (HEESD). Aiming at a low-cost device, both the electrodes have been synth...

Descripción completa

Detalles Bibliográficos
Autores principales: Singh, Saurabh, Sahoo, Rakesh K., Shinde, Nanasaheb M., Yun, Je Moon, Mane, Rajaram S., Chung, Wonsub, Kim, Kwang Ho
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072848/
https://www.ncbi.nlm.nih.gov/pubmed/35530813
http://dx.doi.org/10.1039/c9ra06331e
_version_ 1784701152190791680
author Singh, Saurabh
Sahoo, Rakesh K.
Shinde, Nanasaheb M.
Yun, Je Moon
Mane, Rajaram S.
Chung, Wonsub
Kim, Kwang Ho
author_facet Singh, Saurabh
Sahoo, Rakesh K.
Shinde, Nanasaheb M.
Yun, Je Moon
Mane, Rajaram S.
Chung, Wonsub
Kim, Kwang Ho
author_sort Singh, Saurabh
collection PubMed
description In the current study, we have explored the coupling of Bi(2)O(3) negative electrode and MnO(2) positive electrode materials as an asymmetric faradaic assembly for a high-performance hybrid electrochemical energy storage device (HEESD). Aiming at a low-cost device, both the electrodes have been synthesized by a simple, scalable, and cost-effective chemical synthesis method. After their requisite structure-morphological confirmation and correlation, these electrodes were separately examined for their electrochemical performance in a three-electrode configuration. The results obtained confirm that Bi(2)O(3) and MnO(2) exhibit 910 C g(−1) and 424 C g(−1) specific capacity, respectively, at 2 A g(−1) current density. Notably, the performance of both electrodes has been analyzed using Dunn's method to highlight the distinct nature of their faradaic properties. Afterwards, the asymmetric faradaic assembly of both electrodes, when assembled as a HEESD (MnO(2)//Bi(2)O(3)), delivered 411 C g(−1) specific capacity at 1 A g(−1) current density due to the inclusive contribution from the capacitive as well as the non-capacitive faradaic quotient. Consequently, the assembly offers an excellent energy density of 79 W h kg(−1) at a power density of 702 W kg(−1), with a magnificent retention of energy density up to 21.1 W h kg(−1) at 14 339 W kg(−1) power density. Moreover, it demonstrates long-term cycling stability at 10 A g(−1), retaining 85.2% of its initial energy density after 5000 cycles, which is significant in comparison with the previously reported literature. Additionally, to check the performance of the device in real time, two HEESDs were connected in series to power a light-emitting diode. The results obtained provide significant insight into hybrid coupling, where two different faradaic electrodes can be combined in a synergistic combination for a high-performance HEESD.
format Online
Article
Text
id pubmed-9072848
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90728482022-05-06 Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device Singh, Saurabh Sahoo, Rakesh K. Shinde, Nanasaheb M. Yun, Je Moon Mane, Rajaram S. Chung, Wonsub Kim, Kwang Ho RSC Adv Chemistry In the current study, we have explored the coupling of Bi(2)O(3) negative electrode and MnO(2) positive electrode materials as an asymmetric faradaic assembly for a high-performance hybrid electrochemical energy storage device (HEESD). Aiming at a low-cost device, both the electrodes have been synthesized by a simple, scalable, and cost-effective chemical synthesis method. After their requisite structure-morphological confirmation and correlation, these electrodes were separately examined for their electrochemical performance in a three-electrode configuration. The results obtained confirm that Bi(2)O(3) and MnO(2) exhibit 910 C g(−1) and 424 C g(−1) specific capacity, respectively, at 2 A g(−1) current density. Notably, the performance of both electrodes has been analyzed using Dunn's method to highlight the distinct nature of their faradaic properties. Afterwards, the asymmetric faradaic assembly of both electrodes, when assembled as a HEESD (MnO(2)//Bi(2)O(3)), delivered 411 C g(−1) specific capacity at 1 A g(−1) current density due to the inclusive contribution from the capacitive as well as the non-capacitive faradaic quotient. Consequently, the assembly offers an excellent energy density of 79 W h kg(−1) at a power density of 702 W kg(−1), with a magnificent retention of energy density up to 21.1 W h kg(−1) at 14 339 W kg(−1) power density. Moreover, it demonstrates long-term cycling stability at 10 A g(−1), retaining 85.2% of its initial energy density after 5000 cycles, which is significant in comparison with the previously reported literature. Additionally, to check the performance of the device in real time, two HEESDs were connected in series to power a light-emitting diode. The results obtained provide significant insight into hybrid coupling, where two different faradaic electrodes can be combined in a synergistic combination for a high-performance HEESD. The Royal Society of Chemistry 2019-10-09 /pmc/articles/PMC9072848/ /pubmed/35530813 http://dx.doi.org/10.1039/c9ra06331e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Singh, Saurabh
Sahoo, Rakesh K.
Shinde, Nanasaheb M.
Yun, Je Moon
Mane, Rajaram S.
Chung, Wonsub
Kim, Kwang Ho
Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device
title Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device
title_full Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device
title_fullStr Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device
title_full_unstemmed Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device
title_short Asymmetric faradaic assembly of Bi(2)O(3) and MnO(2) for a high-performance hybrid electrochemical energy storage device
title_sort asymmetric faradaic assembly of bi(2)o(3) and mno(2) for a high-performance hybrid electrochemical energy storage device
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072848/
https://www.ncbi.nlm.nih.gov/pubmed/35530813
http://dx.doi.org/10.1039/c9ra06331e
work_keys_str_mv AT singhsaurabh asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice
AT sahoorakeshk asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice
AT shindenanasahebm asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice
AT yunjemoon asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice
AT manerajarams asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice
AT chungwonsub asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice
AT kimkwangho asymmetricfaradaicassemblyofbi2o3andmno2forahighperformancehybridelectrochemicalenergystoragedevice