Prashant Acharya
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Researcher
Also affiliated: M. P. Shah Medical College (2017)
Faculty Researcher
Research Areas
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Biography and Research Information
OverviewAI-generated summary
Prashant Acharya's research focuses on the development and characterization of novel electrocatalysts for energy conversion applications, particularly for the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). His work investigates the influence of material composition and structure on catalytic activity and stability in alkaline electrolytes. Acharya has published on FexNi100−x films, exploring how their electrochemical active surface area impacts HER performance. He has also studied the role of coordination environments and phase structures in nanoparticle catalysts for OER, including Fe-incorporated Ni(OH)2 and nickel phosphide-iron oxide core-shell nanostructures.
Further research includes optimizing binders for high-temperature polymer electrolyte membrane fuel cells and examining the removal of trichloroethylene by various carbon materials and FeNi-carbon composites. Acharya has a record of 22 publications with 354 citations and an h-index of 8. He has collaborated with several faculty members at the University of Arkansas at Fayetteville, including Lauren F. Greenlee, Jingyi Chen, Ryan Manso, and László Kékedy‐Nagy.
Metrics
- h-index: 8
- Publications: 22
- Citations: 387
Selected Publications
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Revealing Structural Evolution of Nickel Phosphide-Iron Oxide Core–Shell Nanocatalysts in Alkaline Medium for the Oxygen Evolution Reaction (2024)
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Electrochemical Activation of Silicon: Enhancing Hydrogen Production from FeNi Electrocatalysts (2022)
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Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction (2022)
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Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites (2021)
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Electrochemically active surface area controls HER activity for FexNi100−x films in alkaline electrolyte (2021)
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Nickel-Iron Alloy Nanoparticle Characteristics Pre- and Post-Reaction With Orange G (2020)
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Chemical Structure of Fe–Ni Nanoparticles for Efficient Oxygen Evolution Reaction Electrocatalysis (2019)
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Controlling the 3-D morphology of Ni–Fe-based nanocatalysts for the oxygen evolution reaction (2019)
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Role of Surface Area on the Performance of Iron Nickel Nanoparticles for the Oxygen Evolution Reaction (OER) (2018)
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Role of Surface Area on the Performance of Iron Nickel Nanoparticles for the Oxygen Evolution Reaction (OER) (2018)
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Enhanced Electrochemical Ammonia Production Via Peptide-Bound Metals and Effects on the Hydrogen Evolution Reaction (2018)
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Compositional Optimization of Alloy Fe<sub>x</sub>Ni<sub>y</sub>(OH)<sub>2</sub> Nanoparticles for Alkaline Electrochemical Oxygen Evolution (2017)
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Characterization of Iron-Nickel Alloy Nanoparticles for the Oxygen Evolution Reaction As a Function of Iron-Nickel Composition (2017)
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Design of Iron-Based Nanomaterials As Catalysts for Efficient Water Treatment and Electrochemical Energy Conversion (2017)
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Compositional Optimization of Alloy Fe <sub>x</sub> Ni <sub>y</sub> (OH) <sub>2</sub> Nanoparticles for Alkaline Electrochemical Oxygen Evolution (2017)
Collaboration Network
Top Collaborators
- Electrochemically active surface area controls HER activity for FexNi100−x films in alkaline electrolyte
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
- Revealing Structural Evolution of Nickel Phosphide-Iron Oxide Core–Shell Nanocatalysts in Alkaline Medium for the Oxygen Evolution Reaction
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Electrochemical Activation of Silicon: Enhancing Hydrogen Production from FeNi Electrocatalysts
- Electrochemically active surface area controls HER activity for FexNi100−x films in alkaline electrolyte
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Electrochemical Activation of Silicon: Enhancing Hydrogen Production from FeNi Electrocatalysts
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
- Revealing Structural Evolution of Nickel Phosphide-Iron Oxide Core–Shell Nanocatalysts in Alkaline Medium for the Oxygen Evolution Reaction
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
- Revealing Structural Evolution of Nickel Phosphide-Iron Oxide Core–Shell Nanocatalysts in Alkaline Medium for the Oxygen Evolution Reaction
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
- Revealing Structural Evolution of Nickel Phosphide-Iron Oxide Core–Shell Nanocatalysts in Alkaline Medium for the Oxygen Evolution Reaction
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
- Revealing Structural Evolution of Nickel Phosphide-Iron Oxide Core–Shell Nanocatalysts in Alkaline Medium for the Oxygen Evolution Reaction
- Electrochemically active surface area controls HER activity for FexNi100−x films in alkaline electrolyte
- Electrochemically active surface area controls HER activity for FexNi100−x films in alkaline electrolyte
- Electrochemically active surface area controls HER activity for FexNi100−x films in alkaline electrolyte
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Comparative study of trichloroethylene removal by different carbons and FeNi-carbon composites
- Fe Coordination Environment, Fe-Incorporated Ni(OH)<sub>2</sub> Phase, and Metallic Core Are Key Structural Components to Active and Stable Nanoparticle Catalysts for the Oxygen Evolution Reaction
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