Priyanka S. Wasnik
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Process Engineer
Also affiliated: Harbin University of Science and Technology (2023); Lamar University (2012–2019); Northumbria University (2023); Taiyuan University of Science and Technology (2023)
Research Areas
Links
Biography and Research Information
OverviewAI-generated summary
Priyanka Wasnik's research focuses on the development and application of advanced materials for energy storage and sensing technologies. Her work investigates composite materials incorporating nanoparticles and carbon-based structures to enhance properties like dielectric performance, thermal conductivity, and electrochemical activity.
Recent publications highlight her contributions to micro-supercapacitors utilizing laser-induced graphene, strain sensors based on thermoplastic polyurethane and carbon nanotubes, and anticorrosive coatings. She has also explored the dielectric and thermal properties of polymer composites enhanced with silica, multi-walled carbon nanotubes, and boron nitride. Furthermore, her research extends to the development of selective colorimetric platforms for detecting specific chemical compounds and a review of perovskite-based solar cells, examining crystallization and surface modification for improved efficiency and stability.
Wasnik's scholarship includes 31 publications with 1,166 citations and an h-index of 16. She has collaborated with researchers, including Meina Huang from the University of Arkansas at Pine Bluff, on shared publications.
Metrics
- h-index: 17
- Publications: 29
- Citations: 1,266
Positions
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Process Engineer 2018–presentHargrove Engineers & Constructors Engineering ORCID
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Process Engineer publications 2023University of Arkansas at Fayetteville ORCID
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Process Engineer 2015–2018CDI Engineering Engineering ORCID
Selected Publications
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Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability (2023)
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In situ carboxyl functionalization of hybrid organosilica reverse osmosis membranes for water desalination (2023)
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Iron-material-facilitated methane production from anaerobic wastewater treatment (2023)
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In Situ Carboxyl Functionalization of Hybrid Organosilica Reverse Osmosis Membranes for Water Desalination (2023)
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Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability (2023)
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Mixed perovskites (2D/3D)-based solar cells: a review on crystallization and surface modification for enhanced efficiency and stability (2023)
Collaboration Network
Top Collaborators
- Mixed perovskites (2D/3D)-based solar cells: a review on crystallization and surface modification for enhanced efficiency and stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- In situ carboxyl functionalization of hybrid organosilica reverse osmosis membranes for water desalination
- Iron-material-facilitated methane production from anaerobic wastewater treatment
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
Showing 5 of 6 shared publications
- Mixed perovskites (2D/3D)-based solar cells: a review on crystallization and surface modification for enhanced efficiency and stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Mixed perovskites (2D/3D)-based solar cells: a review on crystallization and surface modification for enhanced efficiency and stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Mixed perovskites (2D/3D)-based solar cells: a review on crystallization and surface modification for enhanced efficiency and stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Mixed perovskites (2D/3D)-based solar cells: a review on crystallization and surface modification for enhanced efficiency and stability
- Iron-material-facilitated methane production from anaerobic wastewater treatment
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- Defect passivation in perovskite films by p-methoxy phenylacetonitrile for improved device efficiency and stability
- Defect Passivation in Halide Perovskite Films by p-Methoxy Phenylacetonitrile for Improved Solar Cell Efficiency and Stability
- In situ carboxyl functionalization of hybrid organosilica reverse osmosis membranes for water desalination
- In Situ Carboxyl Functionalization of Hybrid Organosilica Reverse Osmosis Membranes for Water Desalination
- In situ carboxyl functionalization of hybrid organosilica reverse osmosis membranes for water desalination
- In Situ Carboxyl Functionalization of Hybrid Organosilica Reverse Osmosis Membranes for Water Desalination
- In situ carboxyl functionalization of hybrid organosilica reverse osmosis membranes for water desalination
- In Situ Carboxyl Functionalization of Hybrid Organosilica Reverse Osmosis Membranes for Water Desalination
- In situ carboxyl functionalization of hybrid organosilica reverse osmosis membranes for water desalination
- In Situ Carboxyl Functionalization of Hybrid Organosilica Reverse Osmosis Membranes for Water Desalination
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