Dr. Digambar Sawant
Dr. Homi Bhabha State University, Savitribai Phule Pune University, Shivaji University
About
Dr. Digambar Sawant has recently completed his Ph.D. degree at The Institute of Science, Dr. Homi Bhabha State University, Mumbai. His doctoral research on Nickel Molybdate Reduced Graphene Oxide-Based Composites for Supercapacitor Applications, focused on the development of advanced electrode materials for hybrid supercapacitors. His expertise includes electrochemical performance analysis, mechanistic studies, advanced material characterization, water splitting, and DFT-based computational investigations, along with emerging machine-learning-assisted approaches. He also published 12 peer-reviewed articles and 6 book chapters in high-impact journals in the field of energy storage.
Employment
Employment history is unavailable.
Education
-
Dr. Homi Bhabha State University Ph.D.2022 - 2025
-
Savitribai Phule Pune University M.Sc.2017 - 2019
-
Shivaji University B. Sc.2014 - 2017
Projects & Funding
Projects & funding information is unavailable.
Publications (18)
- Boosting Charge Storage via Extrinsic Pseudocapacitance in NiMoO 4 -rGO/NCP Ternary Hybrid Nanostructures Save
- Extrinsic Pseudocapacitive Ternary NiMoO4‐rGO@V2O5 Nanocomposite for Hybrid Supercapacitor Save
- Rapid Synthesis of Nickel Molybdate Nanorods using Microwave for Hydrogen Evolution Reaction and Oxygen Evolution Reaction Electrocatalysis Applications Save
- Spinel-structured tetragonal Mn3O4 nanocrystals as promising electrode for aqueous ammonium-ion storage Save
- Extrinsic Pseudocapacitive ZnCo 2 O 4 /rGO Nanocomposite for Hybrid Supercapacitor Save
- Nickel cobalt phosphate/phosphide as a promising electrode material for extrinsic supercapacitors: machine learning analysis Save
- Synthesis approaches of green materials for supercapacitors: An overview Save
- Polyoxometalates as liquid electrolytes for redox flow batteries Save
- Machine Learning Analysis of Hydrothermally Synthesized LiFePO4 for Lithium-Ion Battery Save
- Theoretical Specific Capacity and Metal Ion Diffusion Pathway of NiMoO4 Microspheres for Hybrid Supercapacitors Save