Dr. Priyanka Aggarwal
Tantia University, Malaviya National Institute of Technology Jaipur, Maharaja Ganga Singh University
About
I am a Ph.D. graduate in Physics from Malaviya National Institute of Technology (MNIT) Jaipur, India, with over five years of research experience in electrocatalysis and sustainable energy materials. My research focuses on the design, synthesis, and characterization of transition metal dichalcogenide (TMD)-based electrocatalysts for hydrogen evolution, oxygen evolution, and overall water splitting.
I have authored several SCI-indexed research articles, a review article, and Elsevier book chapters in the field of energy materials. I also serve as a Peer Reviewer for the International Journal of Hydrogen Energy (Elsevier), contributing to the peer-review process for research in electrocatalysis and hydrogen energy. My current research interests include electrocatalysis, electrochemical water splitting, nanomaterials, transition metal dichalcogenides, and renewable hydrogen production.
Employment
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Tantia University Assistant Professor2025 - 2025
Education
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Malaviya National Institute of Technology Jaipur PhD2019 - 2024
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Maharaja Ganga Singh University M.Sc2017 - 2019
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Maharaja Ganga Singh University B.Sc.2014 - 2017
Projects & Funding
Projects & funding information is unavailable.
Publications (7)
- Rational design of self-supported Mo-doped NiSe2/CoSe2 heterostructures as bifunctional catalysts for enhanced electrocatalytic water splitting Save
- Hexagonal (Cu,Co)Se2 Nanoflakes as Effective and Durable Bifunctional Electrocatalyst for Overall Alkaline Water Splitting: Understanding Local Structure Around Active Sites Save
- Deciphering the Influence of Morphology and Crystal Structure on Alkaline Hydrogen Evolution Activity in Polymorphic Cobalt Diselenide Save
- Conclusions and outlooks Save
- Introduction to single-atom catalysts Save
- Functional role of single-atom catalysts in electrocatalytic hydrogen evolution: Current developments and future challenges Save
- Boosting electrochemical hydrogen evolution activity of MoS2 nanosheets via facile decoration of Au overlayer Save