Publications
34
Citations
882
Est. group size
—
Recurring co-author estimate
Active years
7
Publishing since 2020
Ashmita Biswas works on electrochemical energy conversion, focusing especially on catalysts that turn nitrogen gas into ammonia or nitrate using electricity, as well as related reactions like oxygen reduction and water splitting. The work centers on designing and modifying catalyst materials (such as metal oxides, doped carbons, and single-atom catalysts) to improve how efficiently and selectively these energy-related chemical reactions occur. This research is relevant to sustainable ammonia production and battery/fuel cell technologies.
Publication output grew from none in 2017-2019 to a peak of 11 papers in 2022, followed by a gradual decline through 2023-2025, suggesting an initial surge in productivity that has since slowed somewhat.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Tuning the Electrode Surface Chemistry Manipulates the Interfacial Electrochemistry
ECS Meeting Abstracts · 2025
- Coordination Structure Modulation in Group‐VIB Metal Doped Ag <sub>3</sub> PO <sub>4</sub> Augments Active Site Density for Electrocatalytic Conversion of N <sub>2</sub> to NH <sub>3</sub>
Small · 2024
- Strategic design of VO <sub>2</sub> encased in N-doped carbon as an efficient electrocatalyst for the nitrogen reduction reaction in neutral and acidic media
Nanoscale · 2024
- Leveraging Soft Acid‐Base Interactions Alters the Pathway for Electrochemical Nitrogen Oxidation to Nitrate with High Faradaic Efficiency
Small · 2024
- Deciphering the bridge oxygen vacancy-induced cascading charge effect for electrochemical ammonia synthesis
Materials Horizons · 2024
- Interlinking electronic band properties in catalysts with electrochemical nitrogen reduction performance: a direct influence
Electronic Structure · 2024
- Surface hydrophobicity induced electrochemical nitrogen reduction reaction: A substrate-dependent case study on Cu foam versus Cu foil
Journal of Chemical Sciences · 2024
- Refining the Spectroscopic Detection Technique: A Pivot in the Electrochemical Ammonia Synthesis
Langmuir · 2023
- Engineering hydrophobic–aerophilic interfaces to boost N <sub>2</sub> diffusion and reduction through functionalization of fluorine in second coordination spheres
Chemical Science · 2023
- An interfacially stacked covalent porous polymer on graphene favors electronic mobility: ensuring accelerated oxygen reduction reaction kinetics by an <i>in situ</i> study
Journal of Materials Chemistry A · 2023
- Engineering Catalytically Active Sites by Sculpting Artificial Edges on MoS<sub>2</sub> Basal Plane for Dinitrogen Reduction at a Low Overpotential
Small · 2023
- Ample Lewis Acidic Sites in Mg<sub>2</sub>B<sub>2</sub>O<sub>5</sub> Facilitate N<sub>2</sub> Electroreduction through Bonding–Antibonding Interactions
Inorganic Chemistry · 2023
- Elevating the energy efficiency for the power-to-ammonia conversion: Role of oxygen evolution reaction kinetics
The Journal of Chemical Physics · 2023
- Author response for "Engineering hydrophobic-aerophilic interface to boosts N<sub>2</sub> diffusion and reduction through functionalization of fluorine in second coordination sphere"
2023
- Strategic Modulation of Target-Specific Isolated Fe,Co Single-Atom Active Sites for Oxygen Electrocatalysis Impacting High Power Zn–Air Battery
ACS Nano · 2022
- Inorganic Chemistry×7
- Small×3
- ACS Nano×2
- Journal of Materials Chemistry A×2
- Elsevier eBooks×2
- Kun Xu
Energy · Purdue University West Lafayette
- Naduvile Purayil Dileep
Energy · Purdue University West Lafayette
- Wenqing Zhang
Energy · Purdue University West Lafayette
- Bolin Zhao
Energy · The Ohio State University
- Jianguo Wang
Energy · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
Claim or correct this profile