Joseph Joel Muhanga
This is a likely match — the affiliation was inferred from OpenAlex, ORCID, and web sources but has not been fully confirmed. Treat with appropriate caution.
PhD Candidate
Research Areas
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Biography and Research Information
OverviewAI-generated summary
Joseph Joel Muhanga's research investigates the stability of ultra-thin metal oxide catalyst films for CO2 reduction reactions in non-thermal plasma. He also studies monolithic light concentration using core-shell TiO2 nanostructures templated by polymer colloidal monolayers. Muhanga has explored effective medium approximations for the refractive index of stratified metal oxide composites synthesized via atomic layer deposition. His scholarly work includes eight publications and has garnered 10 citations, with an h-index of 2. Muhanga collaborates with researchers at the University of Arkansas at Fayetteville, including Robert H. Coridan, Samuel K. Conlin, David N. Parette, and Rachel Cherry, with whom he shares multiple co-authored publications.
Metrics
- h-index: 2
- Publications: 8
- Citations: 11
Positions
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PhD Candidate 2021–presentUniversity of Arkansas at Fayetteville Material Science and Engineering Program ORCID
Selected Publications
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Effective medium approximation for the refractive index of stratified metal oxide composites synthesized by atomic layer deposition (2026)
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Characterizing the stability of ultra-thin metal oxide catalyst films in non-thermal plasma CO 2 reduction reactions (2024)
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Characterizing the Stability of Ultra-Thin Metal Oxide Catalyst Films in Non-thermal Plasma CO2 Reduction Reactions (2024)
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Monolithic light concentration by core–shell TiO 2 nanostructures templated by monodisperse polymer colloidal monolayers (2023)
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Monolithic light concentration by core-shell TiO2 nanostructures templated by monodisperse polymer colloidal monolayers (2023)
Collaboration Network
Top Collaborators
- Characterizing the stability of ultra-thin metal oxide catalyst films in non-thermal plasma CO <sub>2</sub> reduction reactions
- Monolithic light concentration by core–shell TiO <sub>2</sub> nanostructures templated by monodisperse polymer colloidal monolayers
- Monolithic light concentration by core-shell TiO2 nanostructures templated by monodisperse polymer colloidal monolayers
- Characterizing the Stability of Ultra-Thin Metal Oxide Catalyst Films in Non-thermal Plasma CO2 Reduction Reactions
- Effective medium approximation for the refractive index of stratified metal oxide composites synthesized by atomic layer deposition
- Characterizing the stability of ultra-thin metal oxide catalyst films in non-thermal plasma CO <sub>2</sub> reduction reactions
- Monolithic light concentration by core–shell TiO <sub>2</sub> nanostructures templated by monodisperse polymer colloidal monolayers
- Monolithic light concentration by core-shell TiO2 nanostructures templated by monodisperse polymer colloidal monolayers
- Characterizing the Stability of Ultra-Thin Metal Oxide Catalyst Films in Non-thermal Plasma CO2 Reduction Reactions
- Monolithic light concentration by core–shell TiO <sub>2</sub> nanostructures templated by monodisperse polymer colloidal monolayers
- Monolithic light concentration by core-shell TiO2 nanostructures templated by monodisperse polymer colloidal monolayers
- Monolithic light concentration by core–shell TiO <sub>2</sub> nanostructures templated by monodisperse polymer colloidal monolayers
- Monolithic light concentration by core-shell TiO2 nanostructures templated by monodisperse polymer colloidal monolayers
- Characterizing the stability of ultra-thin metal oxide catalyst films in non-thermal plasma CO <sub>2</sub> reduction reactions
- Characterizing the Stability of Ultra-Thin Metal Oxide Catalyst Films in Non-thermal Plasma CO2 Reduction Reactions
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