Boosting overall electrochemical water splitting via rare earth doped cupric oxide nanoparticles obtained by co-precipitation technique

dc.contributor.authorRodney, J.D.
dc.contributor.authorDeepapriya, S.
dc.contributor.authorJerome das, S.J.
dc.contributor.authorRobinson, M.C.
dc.contributor.authorPerumal, S.
dc.contributor.authorSadhana, S.
dc.contributor.authorPeriyasamy, P.
dc.contributor.authorJung, H.
dc.contributor.authorJustin Raj, C.J.
dc.date.accessioned2026-02-04T12:27:31Z
dc.date.issued2022
dc.description.abstractThe development of electrocatalyst based on nonprecious metals has been a persistent issue as electrochemical water splitting requires electrocatalyst with advanced activity and stability. Further, the electrocatalyst must require low overpotential above the standard potential (>1.23 V) of water splitting to produce hydrogen. This study presents the facile co-precipitation derived rare earth dysprosium (Dy) doped cupric oxide nanoparticles (Cu<inf>1−x</inf>Dy<inf>x</inf>O) as a non-noble transition metal oxide nanoparticle. The 3 % Dy doped CuO (3 % Dy/CuO) and 1 % Dy doped CuO (1 % Dy/CuO) electrocatalysts showed excellent Oxygen Evolution Reaction (OER) at 1.55 V vs RHE and Hydrogen Evolution Reaction (HER) at − 0.036 V vs RHE in aqueous 1 M KOH aqueous electrolyte to attain the benchmark current density (10 mA cm−2). The stability of the driven electrocatalyst in a bi-functional electrocatalytic setup was monitored for 24 h and was found to be exhibiting a cell voltage of about 2.1 V at 30 mA cm−2 constant current density. Further, the retention capability of the electrode was observed to be 99 % with a very minimal loss. This study hugely suggests the promising consequence of doping rare earth onto a non-precious metal oxide-based electrocatalyst, making it a highly effective bifunctional material for water splitting. © 2022 Elsevier B.V.
dc.identifier.citationJournal of Alloys and Compounds, 2022, 921, , pp. -
dc.identifier.issn9258388
dc.identifier.urihttps://doi.org/10.1016/j.jallcom.2022.165948
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/22319
dc.publisherElsevier Ltd
dc.subjectCoprecipitation
dc.subjectElectrocatalysts
dc.subjectElectrolytes
dc.subjectHydrogen production
dc.subjectMetal nanoparticles
dc.subjectPotassium hydroxide
dc.subjectRare earths
dc.subjectTransition metal oxides
dc.subjectTransition metals
dc.subjectCo-precipitation
dc.subjectElectrochemicals
dc.subjectMetal-oxide
dc.subjectNon-precious metals
dc.subjectOverpotential
dc.subjectPrecipitation techniques
dc.subjectRare earth doped
dc.subjectRare earth doped metal oxide
dc.subjectRare-earths
dc.subjectWater splitting
dc.subjectCopper oxides
dc.titleBoosting overall electrochemical water splitting via rare earth doped cupric oxide nanoparticles obtained by co-precipitation technique

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