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Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor

We synthesized mesoporous cobalt titanate (CTO) microrods via the sol–gel method as an outstanding working electrode for the supercapacitor. The mesoporous CTO microrods were amassed in hexagonal shapes of an average width of ∼670 nm, and were composed of nanoparticles of average diameter ∼41 nm. Th...

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Autores principales: Kitchamsetti, Narasimharao, Choudhary, Ram J., Phase, Deodatta M., Devan, Rupesh S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054855/
https://www.ncbi.nlm.nih.gov/pubmed/35520327
http://dx.doi.org/10.1039/d0ra04052e
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author Kitchamsetti, Narasimharao
Choudhary, Ram J.
Phase, Deodatta M.
Devan, Rupesh S.
author_facet Kitchamsetti, Narasimharao
Choudhary, Ram J.
Phase, Deodatta M.
Devan, Rupesh S.
author_sort Kitchamsetti, Narasimharao
collection PubMed
description We synthesized mesoporous cobalt titanate (CTO) microrods via the sol–gel method as an outstanding working electrode for the supercapacitor. The mesoporous CTO microrods were amassed in hexagonal shapes of an average width of ∼670 nm, and were composed of nanoparticles of average diameter ∼41 nm. The well crystalline CTO microrods of the hexagonal phase to the R3̄ space group possessed an average pore size distribution of 3.92 nm throughout the microrod. The mesoporous CTO microrods with increased textural boundaries played a vital role in the diffusion of ions, and they provided a specific capacitance of 608.4 F g(−1) and a specific power of 4835.7 W kg(−1) and a specific energy of 9.77 W h kg(−1) in an aqueous 2 M KOH electrolyte, which was remarkably better than those of Ti, La, Cr, Fe, Ni, and Sr-based perovskites or their mixed heterostructures supplemented by metal oxides as an impurity. Furthermore, the diffusion-controlled access to the OH(−) ions (0.27 μs) deep inside the microrod conveyed high stability, a long life cycle for up to 1950 continuous charging–discharging cycles, and excellent capacitance retention of 82.3%. Overall, the mesoporous CTO shows its potential as an electrode for a long-cycle supercapacitor, and provides opportunities for additional enhancement after developing the core–shell hetero-architecture with other metal oxide materials such as MnO(2), and TiO(2).
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spelling pubmed-90548552022-05-04 Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor Kitchamsetti, Narasimharao Choudhary, Ram J. Phase, Deodatta M. Devan, Rupesh S. RSC Adv Chemistry We synthesized mesoporous cobalt titanate (CTO) microrods via the sol–gel method as an outstanding working electrode for the supercapacitor. The mesoporous CTO microrods were amassed in hexagonal shapes of an average width of ∼670 nm, and were composed of nanoparticles of average diameter ∼41 nm. The well crystalline CTO microrods of the hexagonal phase to the R3̄ space group possessed an average pore size distribution of 3.92 nm throughout the microrod. The mesoporous CTO microrods with increased textural boundaries played a vital role in the diffusion of ions, and they provided a specific capacitance of 608.4 F g(−1) and a specific power of 4835.7 W kg(−1) and a specific energy of 9.77 W h kg(−1) in an aqueous 2 M KOH electrolyte, which was remarkably better than those of Ti, La, Cr, Fe, Ni, and Sr-based perovskites or their mixed heterostructures supplemented by metal oxides as an impurity. Furthermore, the diffusion-controlled access to the OH(−) ions (0.27 μs) deep inside the microrod conveyed high stability, a long life cycle for up to 1950 continuous charging–discharging cycles, and excellent capacitance retention of 82.3%. Overall, the mesoporous CTO shows its potential as an electrode for a long-cycle supercapacitor, and provides opportunities for additional enhancement after developing the core–shell hetero-architecture with other metal oxide materials such as MnO(2), and TiO(2). The Royal Society of Chemistry 2020-06-19 /pmc/articles/PMC9054855/ /pubmed/35520327 http://dx.doi.org/10.1039/d0ra04052e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kitchamsetti, Narasimharao
Choudhary, Ram J.
Phase, Deodatta M.
Devan, Rupesh S.
Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor
title Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor
title_full Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor
title_fullStr Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor
title_full_unstemmed Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor
title_short Structural correlation of a nanoparticle-embedded mesoporous CoTiO(3) perovskite for an efficient electrochemical supercapacitor
title_sort structural correlation of a nanoparticle-embedded mesoporous cotio(3) perovskite for an efficient electrochemical supercapacitor
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054855/
https://www.ncbi.nlm.nih.gov/pubmed/35520327
http://dx.doi.org/10.1039/d0ra04052e
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