Mechanistic insights on Bi-potentiodynamic control towards atomistic synthesis of electrocatalysts for hydrogen evolution reaction

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dc.contributor.author Srivastava, Rohit Ranjan
dc.contributor.author Gautam, Divyansh
dc.contributor.author Sahu, Rajib
dc.contributor.author Shukla, P.K.
dc.contributor.author Mukherjee, Bratindranath
dc.contributor.author Srivastava, Anchal
dc.date.accessioned 2024-04-12T07:42:24Z
dc.date.available 2024-04-12T07:42:24Z
dc.date.issued 2023-09-30
dc.identifier.issn 20452322
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/3136
dc.description This paper published with affiliation IIT (BHU), Varanasi in open access mode. en_US
dc.description.abstract Herein, electrochemically assisted dissolution-deposition (EADD) is utilized over a three-electrode assembly to prepare an electrocatalyst for hydrogen evolution reaction (HER). Cyclic voltammetry is performed to yield atomistic loading of platinum (Pt) over SnS2 nanostructures via Pt dissolution from the counter electrode (CE). Astonishingly, the working electrode (WE) swept at 50 mV/s is found to compel Pt CE to experience 1000–3000 mV/s. The effect of different potential scan rates at the WE have provided insight into the change in Pt dissolution and its deposition behaviour over SnS2 in three electrode assembly. However, uncontrolled overpotentials at CE in a three-electrode assembly made Pt dissolution-deposition behavior complex. Here, for the first time, we have demonstrated bi-potentiodynamic control for dissolution deposition of Pt in four-electrode assembly over Nickel (Ni) foam. The dual cyclic voltammetry is applied to achieve better control and efficiency of the EADD process, engendering it as a pragmatically versatile and scalable synthesis technique. en_US
dc.description.sponsorship Department of Physics, Harvard University -CRG/2019/004822 Department of Science and Technology, Ministry of Science and Technology, India -EMR/2016/007720 University Grants Commission Banaras Hindu University en_US
dc.language.iso en en_US
dc.publisher Nature Research en_US
dc.relation.ispartofseries Scientific Reports;13
dc.subject electrochemically assisted dissolution-deposition en_US
dc.subject hydrogen evolution reaction en_US
dc.subject dissolution en_US
dc.subject bi-potentiodynamic en_US
dc.subject pragmatically en_US
dc.title Mechanistic insights on Bi-potentiodynamic control towards atomistic synthesis of electrocatalysts for hydrogen evolution reaction en_US
dc.type Article en_US


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