Krishna KC
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Research Areas
Biography and Research Information
OverviewAI-generated summary
Krishna KC's research focuses on the synthesis and application of novel nanomaterials for energy conversion and storage. His work investigates tungsten oxide nanostructures, exploring their phase-dependent properties for enhanced supercapacitor performance and photocatalytic water splitting. KC has also explored the use of nanocellulose, dopamine, and cobalt complexes in developing non-precious electrocatalysts for oxygen reduction reactions.
His scholarly output includes publications in peer-reviewed journals, and he has a current h-index of 3 with 17 total citations across 4 publications. KC collaborates with researchers at the University of Arkansas at Little Rock, including Fumiya Watanabe, Janak Paudel, John Nichols, and Andrew Kingston, with whom he shares multiple publications. His recent activity indicates ongoing engagement in the field.
Metrics
- h-index: 3
- Publications: 6
- Citations: 17
Selected Publications
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Tailoring Phase-Dependent Energy Storage in Nonstoichiometric Tungsten Oxide Nanostructures for Enhanced Supercapacitor Performance (2026)
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Tunable WO 2.9 Volume for Boosted Photocatalytic Efficiency in Cu 2 O Based Z-Scheme Systems (2025)
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Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting (2025)
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A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation (2024)
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Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst (2024)
Collaboration Network
Top Collaborators
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- Tunable WO 2.9 Volume for Boosted Photocatalytic Efficiency in Cu 2 O Based Z-Scheme Systems
- Tailoring Phase-Dependent Energy Storage in Nonstoichiometric Tungsten Oxide Nanostructures for Enhanced Supercapacitor Performance
- Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- Tunable WO 2.9 Volume for Boosted Photocatalytic Efficiency in Cu 2 O Based Z-Scheme Systems
- Tailoring Phase-Dependent Energy Storage in Nonstoichiometric Tungsten Oxide Nanostructures for Enhanced Supercapacitor Performance
- Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- Tunable WO 2.9 Volume for Boosted Photocatalytic Efficiency in Cu 2 O Based Z-Scheme Systems
- Tailoring Phase-Dependent Energy Storage in Nonstoichiometric Tungsten Oxide Nanostructures for Enhanced Supercapacitor Performance
- Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- Tunable WO 2.9 Volume for Boosted Photocatalytic Efficiency in Cu 2 O Based Z-Scheme Systems
- Tailoring Phase-Dependent Energy Storage in Nonstoichiometric Tungsten Oxide Nanostructures for Enhanced Supercapacitor Performance
- Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- Tailoring Phase-Dependent Energy Storage in Nonstoichiometric Tungsten Oxide Nanostructures for Enhanced Supercapacitor Performance
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- Exploring Enhanced Oxygen Reduction Reactions: A Study on Nanocellulose, Dopamine, and Cobalt Complex-Derived Non-Precious Electrocatalyst
- A single-step low-cost synthesis of tungsten oxide nanostructures by resistive hot wire oxidation
- Z -Scheme Tungsten Copper Oxide for Photocatalytic Water Splitting
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