Qinglong Jiang
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Associate Professor
Research Areas
Links
Biography and Research Information
OverviewAI-generated summary
Qinglong Jiang's research interests encompass materials science, with a focus on the development and application of carbon-based nanomaterials and composite films. His work investigates the preparation, properties, and applications of materials such as starch-based carbon nanotubes and graphene, as well as poly(vinylidene fluoride)/Cu@Ni anchored reduced-graphene oxide composite films designed for microwave absorption.
Dr. Jiang also studies the properties and fabrication of carbon and boron nitride nanotubes. His recent publications explore their potential in areas like rechargeable zinc-air batteries, light-emitting devices, and advanced infrared sensing applications. He is the Principal Investigator for the NSF-funded ExpandQISE: Track 2: QuAPB project, which aims to expand quantum information science and engineering research and education at the University of Arkansas at Pine Bluff, with a total award of $5,000,000.
His scholarly contributions include approximately seven publications and a citation count of 199, with an h-index of 5. Dr. Jiang collaborates with researchers at the University of Arkansas at Pine Bluff, including Maoding Cheng, Manoj Kumar Shah, and Grant Wangila, as well as Fumiya Watanabe at the University of Arkansas at Little Rock.
Metrics
- h-index: 29
- Publications: 79
- Citations: 3,487
Positions
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University of ArkansasORCID
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Associate Professor publications 2020–2026University of Arkansas at Pine Bluff Institution web page
Selected Publications
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Perfect-Absorbing Symmetrical Cross-Bar Metamaterials for Advanced Infrared Sensing Application (2026)
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Editorial expression of concern: an overview of polylactic acid (PLA) nanocomposites for sensors (2026)
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Photoabsorption and Stability in Triple-Cation Perovskites Influenced by Interfacial Engineering of the Collector (2025)
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Halide perovskite-polymer composite film for bright and stable light-emitting devices (2025)
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Noncovalently functionalized organic graphene aerogel composite for high-performance proton storage (2025)
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Förster Resonance Energy Transfer and Enhanced Emission in Cs4PbBr6 Nanocrystals Encapsulated in Silicon Nano-Sheets for Perovskite Light Emitting Diode Applications (2024)
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Halide perovskite and polymer composite film for bright light emitting devices (2024)
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Stability of perovskite solar cells through in-use device testing (2024)
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An overview of polylactic acid (PLA) nanocomposites for sensors (2024)
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Progress and Application of Halide Perovskite Materials for Solar Cells and Light Emitting Devices (2024)
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Comparative Analysis of White-Light Absorption Efficiency in Multi-Dimensional Perovskites (2023)
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Influence of Microcrystalline Cellulose on The Structure and Properties of PVDF/1-Allyl-3- methylimidazolium Chloride Composite Materials (2023)
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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)
Federal Grants 1 $5,000,000 total
Collaboration Network
Top Collaborators
- Poly(Vinylidene Fluoride)/Cu@Ni Anchored Reduced-graphene Oxide Composite Films with Folding Movement to Boost Microwave Absorption Properties
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- With Corona Virus, We Get Sick; With the Weapon of Science and Engineering, We Fight Back?
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- Halide perovskite-polymer composite film for bright and stable light-emitting devices
- Halide perovskite and polymer composite film for bright light emitting devices
- With Corona Virus, We Get Sick; With the Weapon of Science and Engineering, We Fight Back?
- With Corona Virus, We Get Sick; With the Weapon of Science and Engineering, We Fight Back?
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