| Researcher Information | |
|---|---|
| Affiliation | The Chinese University of Hong Kong (Shenzhen) |
| Country | China |
| Scopus ID | 55658596800 |
| Documents | 52 |
| Citations | 1619 |
| h-index | 21 |
| Subject Area | Chemistry |
| Event | China Scientist Awards |
| ORCID | 0000-0001-7079-8845 |
Innovative Research Award
Zhihai Ke – The Chinese University of Hong Kong (Shenzhen)
Zhihai Ke is a researcher in chemistry whose scholarly contributions emphasize asymmetric catalysis, chalcogen-bonding catalysis, advanced functional materials, and electrochemical sensing technologies. His publications demonstrate interdisciplinary collaboration and sustained scientific productivity, supporting innovations relevant to modern chemical sciences and advanced materials research.[1]
Contents
Abstract
This article summarizes the academic profile of Zhihai Ke, highlighting notable contributions in asymmetric catalysis, chalcogen-bonding catalysis, and advanced electrochemical sensing materials. The overview reflects publication productivity, research influence, and scholarly impact in contemporary chemistry while considering suitability for recognition through the China Scientist Awards.[1]
Keywords
Asymmetric Catalysis, Chalcogen Bonding, Organic Chemistry, Electrochemistry, MXene, Nanomaterials, Electrochemical Sensors, Catalysis, Materials Chemistry, Sustainable Chemistry
Introduction
Zhihai Ke conducts research spanning synthetic organic chemistry, catalytic methodology, and functional nanomaterials. His investigations combine mechanistic understanding with practical applications, producing innovative catalytic systems and sensing technologies that contribute to chemical synthesis and analytical science while encouraging interdisciplinary scientific advancement.[1]
Research Profile
Affiliated with The Chinese University of Hong Kong (Shenzhen), Zhihai Ke has developed an active publication record supported by strong citation performance. His research portfolio emphasizes asymmetric catalysis, chalcogen-bond interactions, and advanced materials, demonstrating sustained contributions across multiple chemistry disciplines.[2]
Research Contributions
His work introduces efficient catalytic strategies, innovative reaction mechanisms, and functional nanostructured materials for sensing applications. These studies improve reaction selectivity, expand catalyst design principles, and enhance electrochemical detection performance, supporting continued advancement in synthetic chemistry and materials engineering.[2][3]
Publications
Published studies cover asymmetric bromoetherification, autotandem chalcogen-bonding catalysis, and MXene-based electrochemical sensors. These peer-reviewed articles demonstrate methodological innovation and interdisciplinary collaboration while contributing valuable knowledge to organic chemistry, catalysis, and materials science.[1][2][3]
Research Impact
The research has influenced catalytic methodology and advanced sensing technologies through highly cited publications and collaborative investigations. Its scientific relevance extends to synthetic chemistry, nanomaterials, and electrochemical analysis, encouraging future innovation and practical technological applications.[1][3]
Award Suitability
Based on publication quality, citation metrics, interdisciplinary research, and sustained scientific productivity, Zhihai Ke demonstrates attributes commonly associated with recognition by the China Scientist Awards. His contributions support scientific excellence, innovation, and international collaboration within contemporary chemical research.[1]
Conclusion
Zhihai Ke has established a distinguished research profile through innovative chemistry research, impactful publications, and interdisciplinary collaboration. His achievements in catalysis and advanced materials continue supporting scientific progress, making his academic contributions noteworthy within the international chemistry research community.[1][2]
External Links
References
- Electrostatically assembled MnO2 nanoflower-pillared Ti3C2Tx MXene heterostructures for flexible, high-sensitivity electrochemical sensors.
https://www.sciencedirect.com/science/article/abs/pii/S2588842026000805 - Catalytic Asymmetric Bromoetherification and Desymmetrization of Olefinic 1,3‐Diols with C2‐Symmetric Sulfides.
https://www.researchgate.net/publication/409408759_Catalytic_Asymmetric_Bromoetherification_and_Desymmetrization_of_Olefinic_13-Diols_with_C2-Symmetric_Sulfides - Autotandem Chalcogen-Bonding Catalysis: Oxaselenolium-Catalyzed Cascade Povarov–Hydrogen-Transfer Reaction.
https://www.researchgate.net/publication/395164505_Autotandem_Chalcogen-Bonding_Catalysis_Oxaselenolium-Catalyzed_Cascade_Povarov-Hydrogen-Transfer_Reaction