Chhabilal Regmi
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Also affiliated: Karlsruhe Institute of Technology (2020); Sun Moon University (2016–2021); University of Chemistry and Technology, Prague (2021–2024)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Chhabilal Regmi's research focuses on the development and application of semiconductor photocatalysts for environmental remediation and antimicrobial purposes. His work investigates the use of visible and near-infrared light to activate these materials for the degradation of organic pollutants in wastewater and the inactivation of bacteria.
Regmi has studied various doped and modified bismuth vanadate (BiVO4) semiconductors, including those doped with Ytterbium (Yb+3), Erbium (Er+3), Thulium (Tm+3), Iron (Fe), Nickel (Ni), and Silver (Ag). These modifications aim to enhance photocatalytic efficiency and broaden the light absorption range. His publications detail the mechanisms behind photocatalytic microbial decontamination and the degradation of specific contaminants like methylene blue.
His research also extends to other semiconductor materials, such as titanium dioxide (TiO2) deposited on ceramic membranes, and explores the multifunctionality of doped materials like copper-doped BiVO4. Regmi has collaborated with researchers at the University of Arkansas at Fayetteville, including Ranil Wickramasinghe and Chidambaram Thamaraiselvan, on shared publications. His scholarly output includes 46 publications and has garnered 1,799 citations, with an h-index of 23.
Metrics
- h-index: 23
- Publications: 46
- Citations: 1,806
Positions
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University of Arkansas at Fayetteville publications 2022–2025College of Engineering ORCID
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Assistant Professor publications 2022–2025University of Arkansas at Fayetteville Listing
Selected Publications
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Hybrid combination of advanced oxidation process with membrane technology for wastewater treatment: gains and problems (2025)
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Ultraviolet photon upconversion in Er–SiAlON under 1550 nm excitation (2024)
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Carbon-Based Nanocomposite Membranes for Membrane Distillation: Progress, Problems and Future Prospects (2024)
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Preparation and characterisation of NH3 gas sensor based on PANI/Fe-doped CeO2 nanocomposite (2024)
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Recovery of Ionic Liquid from the Model Solution Mixture Mimicking the Catalytically Hydrolyzed Cellulose Product Utilizing Amberlyst Ion-Exchange Resin (2023)
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Advancing produced water treatment: Scaling up EC-MF-MDC technology from lab to pilot scale (2023)
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Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors (2022)
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Cellulose Triacetate-Based Mixed-Matrix Membranes with MXene 2D Filler—CO2/CH4 Separation Performance and Comparison with TiO2-Based 1D and 0D Fillers (2022)
Collaboration Network
Top Collaborators
- Carbon-Based Nanocomposite Membranes for Membrane Distillation: Progress, Problems and Future Prospects
- Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors
- Hybrid combination of advanced oxidation process with membrane technology for wastewater treatment: gains and problems
- Ultraviolet photon upconversion in Er–SiAlON under 1550 nm excitation
- Carbon-Based Nanocomposite Membranes for Membrane Distillation: Progress, Problems and Future Prospects
- Hybrid combination of advanced oxidation process with membrane technology for wastewater treatment: gains and problems
- Recovery of Ionic Liquid from the Model Solution Mixture Mimicking the Catalytically Hydrolyzed Cellulose Product Utilizing Amberlyst Ion-Exchange Resin
- Preparation and characterisation of NH3 gas sensor based on PANI/Fe-doped CeO2 nanocomposite
- Cellulose Triacetate-Based Mixed-Matrix Membranes with MXene 2D Filler—CO2/CH4 Separation Performance and Comparison with TiO2-Based 1D and 0D Fillers
- Preparation and characterisation of NH3 gas sensor based on PANI/Fe-doped CeO2 nanocomposite
- Cellulose Triacetate-Based Mixed-Matrix Membranes with MXene 2D Filler—CO2/CH4 Separation Performance and Comparison with TiO2-Based 1D and 0D Fillers
- Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors
- Ultraviolet photon upconversion in Er–SiAlON under 1550 nm excitation
- Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors
- Ultraviolet photon upconversion in Er–SiAlON under 1550 nm excitation
- Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors
- Ultraviolet photon upconversion in Er–SiAlON under 1550 nm excitation
- Advancing produced water treatment: Scaling up EC-MF-MDC technology from lab to pilot scale
- Recovery of Ionic Liquid from the Model Solution Mixture Mimicking the Catalytically Hydrolyzed Cellulose Product Utilizing Amberlyst Ion-Exchange Resin
- Advancing produced water treatment: Scaling up EC-MF-MDC technology from lab to pilot scale
- Recovery of Ionic Liquid from the Model Solution Mixture Mimicking the Catalytically Hydrolyzed Cellulose Product Utilizing Amberlyst Ion-Exchange Resin
- Cellulose Triacetate-Based Mixed-Matrix Membranes with MXene 2D Filler—CO2/CH4 Separation Performance and Comparison with TiO2-Based 1D and 0D Fillers
- Cellulose Triacetate-Based Mixed-Matrix Membranes with MXene 2D Filler—CO2/CH4 Separation Performance and Comparison with TiO2-Based 1D and 0D Fillers
- Cellulose Triacetate-Based Mixed-Matrix Membranes with MXene 2D Filler—CO2/CH4 Separation Performance and Comparison with TiO2-Based 1D and 0D Fillers
- Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors
- Ultraviolet and visible upconversion in Yb/Er-CaSiO3 β-wollastonite phosphors
- Advancing produced water treatment: Scaling up EC-MF-MDC technology from lab to pilot scale
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