Yong Wang
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Professor
Also affiliated: BGI Group (China) (2021); Shihezi University (2023–2026); Chinese Academy of Tropical Agricultural Sciences (2023); Tianjin University of Commerce (2019); Hebei Medical University (2025); Agency for Science, Technology and Research (2017–2019); Jiangsu University (2012–2025); Griffith University (2014); Shandong University of Technology (2016–2020); Nanjing Agricultural University (2024–2025); University of Science and Technology of China (2014–2018); Hubei University of Medicine (2020); Fujian Medical University (2012–2019); Southwest University of Science and Technology (2020); Richland College (2023); Battelle (2005–2006); Zhejiang Sci-Tech University (2022–2024); Nanjing Tech University (1989–2025); Shandong University of Traditional Chinese Medicine (2023); Zhejiang Normal University (2025); North University of China (2019); Ewha Womans University (2016); Central South University (2016); University of Connecticut (2012); Jiangxi University of Water Resources and Electric Power (2005); Pacific Northwest National Laboratory (2000–2022); Qingdao University of Science and Technology (2013–2023); Mongolian University of Science and Technology (2022); University of Kansas (2005); Max Planck Society (2010); University of Electronic Science and Technology of China (2020–2022); Chongqing University (2006); Jinan University (2024–2026); Tianjin University (2012–2024); Gansu Agricultural University (2023); Hangzhou Normal University (2008–2009); Southwest Petroleum University (2017); The University of Melbourne (2015–2016); Nanyang Technological University (2008–2019); Yamaguchi University (2002–2003); Liaoning Technical University (2019); Guangdong Medical College (2019); Xuzhou Medical College (2015–2023); Beijing University of Chinese Medicine (2024); Guizhou University (2023); Dalian Institute of Chemical Physics (2018–2019); Shenzhen University (2014–2015); Pfizer (United States) (2007); Donghua University (2008); Northeast Normal University (2020); Shaanxi University of Technology (2021–2022); Yunnan University (2019–2021); Xiamen University (2017–2019); Jilin University (2002); China Academy of Space Technology (2024); Wuhan University of Technology (2018–2025); Liaocheng University (2002–2012); Chinese Academy of Sciences (2016–2018); Changsha University (2022); Tohoku University (2015–2026); Peking University (2014–2023); Singapore Polytechnic (2017); Washington University in St. Louis (2023); Harbin Institute of Technology (2019–2023); Nankai University (2023); Ministry of Natural Resources (2023); The University of Texas at Tyler (2021); Sichuan University (2019); Fudan University (2024); Dalian University of Technology (2014–2023); Wenzhou Medical University (2023); XinHua Hospital (2025); First Affiliated Hospital of Wenzhou Medical University (2023); Guangzhou Institutes of Biomedicine and Health (2012); Sir Run Run Shaw Hospital (2020–2021); Chinese Academy of Geological Sciences (2025); Huzhou Normal University (2021); Suzhou University of Science and Technology (2023); Chengdu University of Technology (2025); Hebei University of Science and Technology (2025); University of Jinan (2025); Henan University of Technology (2008–2024); Wuhan University (2024); Sichuan Agricultural University (2024); Guilin University of Technology (2022); Zhengzhou University (2019–2025); Soochow University (2006–2021); Henan Institute of Education (2024); Zhaotong University (2002–2018); Third Hospital of Hebei Medical University (2025); Wenzhou Hospital of Traditional Chinese Medicine (2011–2021); West China Hospital of Sichuan University (2019); Changjiang Institute of Survey, Planning, Design and Research (2014); State Key Laboratory of Pollution Control and Resource Reuse (2024); Zhengzhou University of Science and Technology (2023); Ministry of Education (2022); Max Planck Institute of Colloids and Interfaces (2010–2013); Institute of Catalysis and Petrochemistry (2015–2023); Dalian University (2014–2023); Advanced Institute of Materials Science (2024–2026); Shanghai CASB Biotechnology (China) (2019); Fourth People's Hospital of Sichuan Province (2019–2026); Key Laboratory of Guangdong Province (2024); Novel (United States) (2014–2017); Institute of Organic Synthesis (2017); Shanghai Power Equipment Research Institute (2014); Shanghai Liangyou (China) (2025); Hospital 463 People's Liberation Army (2023); Institute of Subtropical Agriculture (2023); Second Affiliated Hospital of Inner Mongolia Medical University (2020); Xinjiang Institute of Engineering (2021); Cell Technology (China) (2012); Energetics (United States) (2005); Catalytic Materials (United States) (2021); Beijing National Laboratory for Molecular Sciences (2025); Institute of Vegetables and Flowers (2023); Guangdong Urban & Rural Planning and Design Institute (2012); Institute of Materials Research and Engineering (2017–2019); Hangzhou Academy of Agricultural Sciences (2015–2019); Shanghai Institute of Applied Physics (2016); Ministry of Education (2022–2026); China Institute of Daily Chemical Industry (2016); Chengdu University (2017–2024); Shanghai Public Security Bureau (2025); Chinese Academy of Forestry (2012); Sichuan Provincial Hospital of Traditional Chinese Medicine (2019); Research Institute of Wood Industry (2012); Yixing People's Hospital (2012–2020); Institute of Forensic Science (2025); Renmin Hospital of Wuhan University (2024); Collaborative Innovation Center of Advanced Microstructures (2019); Hangzhou Xixi hospital (2014–2019); Shandong Academy of Sciences (2018); Central Hospital of Wuhan (2018); Wilmar International (Singapore) (2019); Advanced Materials and Technologies (Slovenia) (2025); Shenzhen Baoan High School Group (2014); Printed Electronics (United Kingdom) (2019); National Synchrotron Radiation Laboratory (2018); Collaborative Innovation Center of Chemical Science and Engineering Tianjin (2024); Changzhou University (2021); State Key Laboratory of Chemical Engineering (2014–2021); Collaborative Innovation Center of Chemistry for Energy Materials (2017–2019); Jiangsu Police Officer College (2025); The Synergetic Innovation Center for Advanced Materials (2017); Institute of New Materials (2018); China University of Petroleum, East China (2018–2025); Fujian Institute of Oceanography (2023); Shanghai Institute of Ceramics (2017–2018); Zhejiang Medicine (China) (2021); Union Hospital (2019); University of Chinese Academy of Sciences (2017–2025); First Affiliated Hospital Zhejiang University (2024); Nano Carbon (Poland) (2014); Institute for Materials Research, Tohoku University (2025); Molecular Devices (2016); State Key Laboratory of Fine Chemicals (2015–2016); State Key Laboratory of Advanced Welding and Joining (2019); State Key Laboratory of Materials-Oriented Chemical Engineering (2017); Xinjiang Institute of Technology (2021); Laboratory for Laser Energetics (2005); State Key Laboratory of Radiation Medicine and Protection (2019); State Key Laboratory of Chemical Resource Engineering (2011–2016); Guangxi Key Laboratory of Electrochemical and Magnetochemical Functional Materials (2022); Shanghai Nuclear Engineering Research and Design Institute (China) (2005); Qingdao University of Technology (2023); Northeast Forestry University (2017); Huazhong University of Science and Technology (2018–2022); Southwest Jiaotong University (2024); Shaanxi University of Science and Technology (2016–2021); China Agricultural University (2013); Guilin University of Electronic Technology (2023); University of Rochester (2005–2008); Inner Mongolia University of Technology (2022); Zhejiang University of Technology (2011–2013); North Dakota State University (2015–2018); Technical University of Munich (2020–2023); China United Network Communications Group (China) (2024); Anhui Polytechnic University (2025); Nokia (United States) (2004); Washington State University (2010–2026); Beijing University of Chemical Technology (2011–2016); Xiamen University of Technology (2023–2025); Zhejiang University (2004–2026); Lanzhou University (2013); Taizhou University (2010–2024); Nanjing Medical University (2023); Nanjing University (1989–2019); Northwest A&F University (2023); Taiyuan University of Technology (2015); Northeast Petroleum University (2023); Northeastern University (2012); University of Science and Technology Beijing (2024–2025); Hebei Normal University (2016); Nanjing University of Aeronautics and Astronautics (2025); Tsinghua University (2013–2014)
Formerly Arkansas Affiliated with University of Arkansas through 2022; recent publications list Shihezi University, Jinan University.
Upstream record may be merged OpenAlex, the source of these figures, lists 197 institutions in 15 countries for this author record — a pattern that usually means it combines several researchers with similar names. The totals above may include work by other people.
Research Areas
Biomedical Subjects
Biography and Research Information
OverviewAI-generated summary
Yong Wang's research focuses on the design and development of heterogeneous catalysts, energy storage materials, and energy conversion technologies, with an emphasis on carbon-based materials. His work aims to advance green energy technologies by exploring fundamental scientific principles. He has co-authored 40 patents and over 140 journal articles, accumulating more than 14,000 citations. His current scholarship metrics include an h-index of 94, with 606 total publications and 39,943 total citations.
Professor Wang has received funding for his work, including an NSF I-Corps grant of $50,000 for the development of bent DNA molecules as amplifying sensors. He leads the Advanced Materials and Catalysis Group (AMCG) at the University of Arkansas at Fayetteville and actively collaborates with researchers within the institution, including Ariel Rogers, Venkata Rao Krishnamurthi, Diksha Shrestha, and Amani Jereb, with whom he has multiple shared publications.
His research has explored areas such as polymeric graphitic carbon nitride as an organocatalyst, non-noble metal-based carbon composites for hydrogen evolution reactions, and cobalt-cobalt oxide/N-doped carbon hybrids as electrocatalysts. Other publications detail biomass-derived carbon for energy storage and conversion, and the use of boron- and fluorine-containing mesoporous carbon nitride polymers as metal-free catalysts.
Metrics
- h-index: 94
- Publications: 606
- Citations: 39,943
Positions
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Professor 2007–presentZhejiang University Institute of Catalysis ORCID
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Professor publications 2022–2026University of Arkansas at Fayetteville ORCID
Selected Publications
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Disruption of <i>Drosophila melanogaster</i> Larval Locomotion Caused by Silver Ions (2026)
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Visual Cues and Valuation: Evidence from the Housing Market (2025)
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Bacterial motility in aqueous micro-environment with natural soil particles (2025)
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Dynamic global acetylation remodeling during the yeast heat shock response (2025)
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Exploring the potential of tesla valve for filtering and sorting microscale active swimmers: A computational study (2023)
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Silver Ions Inhibit Bacterial Movement and Stall Flagellar Motor (2023)
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Compact, Fast Blinking Cd-Free Quantum Dots for Super-Resolution Fluorescence Imaging (2023)
Federal Grants 1 $50,000 total
I-Corps: Development of Bent DNA Molecules as Amplifying Sensors
Collaboration Network
Top Collaborators
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Bacterial Growth Curve Measurements with a Multimode Microplate Reader
- Bacterial mobility and motility in porous media mimicked by microspheres
- Interactions of E. coli with cylindrical micro-pillars of different geometric modifications
- Real-Time Imaging of Laser-Induced Nanowelding of Silver Nanoparticles in Solution
Showing 5 of 11 shared publications
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- A new analysis method for evaluating bacterial growth with microplate readers
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Silver Ions Caused Faster Diffusive Dynamics of Histone-Like Nucleoid-Structuring Proteins in Live Bacteria
Showing 5 of 10 shared publications
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- A new analysis method for evaluating bacterial growth with microplate readers
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Silver Ions Caused Faster Diffusive Dynamics of Histone-Like Nucleoid-Structuring Proteins in Live Bacteria
Showing 5 of 10 shared publications
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- A new analysis method for evaluating bacterial growth with microplate readers
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- Microampere Electric Current Causes Bacterial Membrane Damage and Two-Way Leakage in a Short Period of Time
- Real-Time Imaging of Laser-Induced Nanowelding of Silver Nanoparticles in Solution
Showing 5 of 7 shared publications
- Silver Ions Caused Faster Diffusive Dynamics of Histone-Like Nucleoid-Structuring Proteins in Live Bacteria
- Bent DNA Bows as Sensing Amplifiers for Detecting DNA-Interacting Salts and Molecules
- Learning the Lens Equation Using Water and Smartphones/Tablets
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- Bacterial mobility and motility in porous media mimicked by microspheres
- Engineering silver nanoparticle surfaces for antimicrobial applications
- Polydopamine Surface Coating Synergizes the Antimicrobial Activity of Silver Nanoparticles
- Real-Time Imaging of Laser-Induced Nanowelding of Silver Nanoparticles in Solution
- Real-time imaging of laser-induced nanowelding of silver nanoparticles in solution
- Bacterial mobility and motility in porous media mimicked by microspheres
- Bacterial motility in aqueous micro-environment with natural soil particles
- Bacterial mobility and motility in porous media mimicked by microspheres
- Silver Ions Caused Faster Diffusive Dynamics of Histone-Like Nucleoid-Structuring Proteins in Live Bacteria
- Revisiting the Temperature Dependence of Protein Diffusion inside Bacteria: Validity of the Stokes-Einstein Equation
- Real-Time Imaging of Laser-Induced Nanowelding of Silver Nanoparticles in Solution
- Real-time imaging of laser-induced nanowelding of silver nanoparticles in solution
- Bacterial mobility and motility in porous media mimicked by microspheres
- Bacterial mobility and motility in porous media mimicked by microspheres
- Bacterial mobility and motility in porous media mimicked by microspheres
- Bacterial mobility and motility in porous media mimicked by microspheres
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
- An experiment-based model quantifying antimicrobial activity of silver nanoparticles on Escherichia coli
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