Cited 1 time in
Cobalt phosphate nanorod bundles for efficient supercapacitor and oxygen evolution reaction applications and their temperature dependence
| DC Field | Value | Language |
|---|---|---|
| dc.contributor.author | Nikam, Sushama M. | - |
| dc.contributor.author | Sutar, Suhas H. | - |
| dc.contributor.author | Jituri, Shubham D. | - |
| dc.contributor.author | Inamdar, Akbar I. | - |
| dc.contributor.author | Mujawar, Sarfraj H. | - |
| dc.date.accessioned | 2024-11-18T05:30:12Z | - |
| dc.date.available | 2024-11-18T05:30:12Z | - |
| dc.date.issued | 2024-11 | - |
| dc.identifier.issn | 1144-0546 | - |
| dc.identifier.issn | 1369-9261 | - |
| dc.identifier.uri | https://scholarworks.dongguk.edu/handle/sw.dongguk/56221 | - |
| dc.description.abstract | Developing highly stable, low-cost, and efficient electrode materials for supercapacitor and oxygen evolution reactions is a challenging issue in energy storage and generation technology to meet the demand for sustainable and clean energy. Herein, cobalt phosphates in comparison with cobalt oxides were synthesized using a successive ionic layer adsorption and reaction (SILAR) method on a nickel foam substrate with different crystallization temperatures, and their supercapacitor and oxygen evolution reaction performances were studied. The nanorod bundles of cobalt phosphate electrodes prepared at 150 degrees C delivered an excellent specific charge storage capacity of 1512 F g-1 (681 C g-1) at a current density of 5 mA cm-2, which is higher than that of cobalt oxide (1103.9 F g-1 (496 C g-1)). They are highly stable for more than 2000 charge-discharge cycles with a coulombic efficiency of 93%. Furthermore, the same electrodes exhibited enhanced electrocatalytic behaviour for the oxygen evolution reaction (OER) with an overpotential of 359 mV at a current density of 30 mA cm-2, lowest Tafel slope of 60 mV dec-1 and stability of 20 hours. Enhanced reaction kinetics are attributed to the high electrochemical surface area with a Cdl of 594 mu F and improved electronic conductivity. The above results indicated that cobalt phosphate is one of the most efficient electrode materials for the OER and supercapacitors. | - |
| dc.format.extent | 12 | - |
| dc.language | 영어 | - |
| dc.language.iso | ENG | - |
| dc.publisher | Royal Society of Chemistry | - |
| dc.title | Cobalt phosphate nanorod bundles for efficient supercapacitor and oxygen evolution reaction applications and their temperature dependence | - |
| dc.type | Article | - |
| dc.publisher.location | 영국 | - |
| dc.identifier.doi | 10.1039/d4nj03712j | - |
| dc.identifier.scopusid | 2-s2.0-85208385665 | - |
| dc.identifier.wosid | 001346925800001 | - |
| dc.identifier.bibliographicCitation | New Journal of Chemistry, v.48, no.45, pp 19113 - 19124 | - |
| dc.citation.title | New Journal of Chemistry | - |
| dc.citation.volume | 48 | - |
| dc.citation.number | 45 | - |
| dc.citation.startPage | 19113 | - |
| dc.citation.endPage | 19124 | - |
| dc.type.docType | Article | - |
| dc.description.isOpenAccess | N | - |
| dc.description.journalRegisteredClass | scie | - |
| dc.description.journalRegisteredClass | scopus | - |
| dc.relation.journalResearchArea | Chemistry | - |
| dc.relation.journalWebOfScienceCategory | Chemistry, Multidisciplinary | - |
| dc.subject.keywordPlus | ANNEALING TEMPERATURE | - |
| dc.subject.keywordPlus | WATER OXIDATION | - |
| dc.subject.keywordPlus | PERFORMANCE | - |
| dc.subject.keywordPlus | ELECTRODE | - |
| dc.subject.keywordPlus | NANOFLAKES | - |
| dc.subject.keywordPlus | NANOTUBES | - |
| dc.subject.keywordPlus | OXIDE | - |
| dc.subject.keywordPlus | RAMAN | - |
| dc.subject.keywordAuthor | Cobalt | - |
| dc.subject.keywordAuthor | Nickel | - |
| dc.subject.keywordAuthor | Phosphate | - |
| dc.subject.keywordAuthor | Capacitor Storage | - |
| dc.subject.keywordAuthor | Oxygen Evolution Reaction | - |
| dc.subject.keywordAuthor | Phosphates | - |
| dc.subject.keywordAuthor | 'current | - |
| dc.subject.keywordAuthor | Cobalt Oxides | - |
| dc.subject.keywordAuthor | Electrode Material | - |
| dc.subject.keywordAuthor | Energy Storage Technologies | - |
| dc.subject.keywordAuthor | Evolution Reactions | - |
| dc.subject.keywordAuthor | Generation Technologies | - |
| dc.subject.keywordAuthor | Highly Stables | - |
| dc.subject.keywordAuthor | Low-costs | - |
| dc.subject.keywordAuthor | Oxygen Evolution | - |
| dc.subject.keywordAuthor | Temperature Dependence | - |
| dc.subject.keywordAuthor | Nanorods | - |
| dc.subject.keywordAuthor | Cobalt | - |
| dc.subject.keywordAuthor | Nanorod | - |
| dc.subject.keywordAuthor | Nickel | - |
| dc.subject.keywordAuthor | Phosphate | - |
| dc.subject.keywordAuthor | Article | - |
| dc.subject.keywordAuthor | Chemical Reaction Kinetics | - |
| dc.subject.keywordAuthor | Conductance | - |
| dc.subject.keywordAuthor | Crystallization | - |
| dc.subject.keywordAuthor | Current Density | - |
| dc.subject.keywordAuthor | Foam | - |
| dc.subject.keywordAuthor | Oxygen Evolution Reaction | - |
| dc.subject.keywordAuthor | Successive Ionic Layer Adsorption And Reaction | - |
| dc.subject.keywordAuthor | Surface Area | - |
| dc.subject.keywordAuthor | Temperature | - |
| dc.subject.keywordAuthor | Temperature Dependence | - |
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