Growth of octahedral structured AgBiS2 single crystals and its insights on the high performance electrocatalytic hydrogen generation

dc.contributor.authorJauhar, R.O.M.
dc.contributor.authorRamachandran, K.
dc.contributor.authorDeepapriya, S.
dc.contributor.authorJoshi, S.
dc.contributor.authorGhfar, A.A.
dc.contributor.authorRao, L.
dc.contributor.authorBadekai Ramachandra, B.R.
dc.contributor.authorUdayashankar, N.K.
dc.contributor.authorVadivel, V.
dc.contributor.authorRaji, R.
dc.contributor.authorKim, B.C.
dc.contributor.authorRodney, J.D.
dc.date.accessioned2026-02-04T12:24:25Z
dc.date.issued2024
dc.description.abstractGiven the enormous depletion of fossil fuels and growing environmental concerns, there is an immediate need to develop alternative and clean energy sources. Hydrogen (H<inf>2</inf>), recognized for its cleanliness and renewability, is poised to meet future energy requirements. Consequently, ongoing research is focused on the development of electro-active, durable, and cost-effective catalysts to replace expensive noble metal-based electrocatalysts. In this study, microscale AgBiS<inf>2</inf> chalcogenide derived from a single crystal is reported as promising electrocatalysts for the Hydrogen Evolution Reaction (HER) with a remarkably low overpotential. The physico-chemical characterization of the AgBiS<inf>2</inf> catalyst has been investigated using various analytical techniques. The synthesized AgBiS<inf>2</inf> catalyst exhibits excellent HER activity, manifesting a low overpotential of 86 mV at a current density of 10 mA cm−2 and a Tafel slope of 44 mV dec−1, along with superior stability even after 24 h in HER at a very high current density. The developed AgBiS<inf>2</inf> also showcased stable production when subjected to a two-electrode system. The enhanced alkaline HER activity of AgBiS<inf>2</inf> can be attributed to its phase purity, high crystallinity, and the presence of high active sites. The observed high electrochemical performance and stability position AgBiS<inf>2</inf> as a potential electrocatalyst for the hydrogen evolution reaction. This finding holds significant promise in the quest for efficient, durable, and economically viable catalysts to drive the shift towards clean and renewable energy sources. © 2024 Hydrogen Energy Publications LLC
dc.identifier.citationInternational Journal of Hydrogen Energy, 2024, 77, , pp. 291-300
dc.identifier.issn3603199
dc.identifier.urihttps://doi.org/10.1016/j.ijhydene.2024.06.157
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/20976
dc.publisherElsevier Ltd
dc.subjectAlkalinity
dc.subjectBismuth compounds
dc.subjectCatalyst activity
dc.subjectCost effectiveness
dc.subjectCrystallinity
dc.subjectElectrocatalysts
dc.subjectElectrolysis
dc.subjectFossil fuels
dc.subjectHydrogen production
dc.subjectPrecious metals
dc.subjectRenewable energy
dc.subjectSingle crystals
dc.subjectSlope stability
dc.subjectClean energy sources
dc.subjectElectrocatalytic
dc.subjectEnvironmental concerns
dc.subjectHydrogen evolution reaction activities
dc.subjectHydrogen evolution reactions
dc.subjectHydrogen generations
dc.subjectOverpotential
dc.subjectPerformance
dc.subjectWater splitting
dc.subject]+ catalyst
dc.subjectSilver compounds
dc.titleGrowth of octahedral structured AgBiS2 single crystals and its insights on the high performance electrocatalytic hydrogen generation

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