Research Excellence Award
| Hongwei He | |
|---|---|
| Name | Hongwei He |
| Affiliation | Qingdao University |
| Country | China |
| Scopus ID | 55916112000 |
| Documents | 56 |
| Citations | 2,255 |
| h-index | 22 |
| Subject Area | Aqueous Secondary Battery |
| Event | Global Particle Physics Excellence Awards |
Hongwei He is a researcher affiliated with Qingdao University whose scholarly work primarily focuses on aqueous secondary battery technologies, electrochemical energy storage materials, battery chemistry, and advanced electrode systems. His publications contribute to the understanding of rechargeable battery performance, material optimization, and sustainable energy storage solutions. Based on available bibliometric indicators, his research demonstrates consistent academic productivity and measurable scientific influence within the field of electrochemical energy storage.[1][2]
Abstract
Hongwei He has established a research profile centered on aqueous secondary batteries and electrochemical energy storage technologies. His investigations include electrode materials, electrolyte engineering, reaction mechanisms, battery durability, and sustainable energy storage systems. Through peer-reviewed publications, his work contributes to improving battery safety, cycling stability, energy density, and practical applications for next-generation energy storage devices.
Keywords
- Aqueous Secondary Battery
- Electrochemical Energy Storage
- Rechargeable Batteries
- Battery Materials
- Electrode Engineering
- Materials Chemistry
- Energy Storage Systems
- Electrochemistry
Introduction
The growing demand for sustainable energy technologies has intensified research into safe, efficient, and environmentally friendly rechargeable battery systems. Aqueous secondary batteries have emerged as promising alternatives because of their intrinsic safety, relatively low cost, and environmental compatibility. Hongwei He has contributed to this area by investigating materials and electrochemical mechanisms that improve battery performance and long-term reliability.[2][3]
Research Profile
According to the available bibliometric profile, Hongwei He has authored 56 indexed publications, accumulated more than 2,255 citations, and achieved an h-index of 22. His research portfolio reflects sustained activity in electrochemical materials, battery technologies, and energy storage applications. These indicators demonstrate consistent scholarly productivity and scientific visibility within the international research community.[1]
Research Contributions
- Development of advanced aqueous secondary battery materials with improved electrochemical performance.[3]
- Research on electrode interfaces and charge-transfer mechanisms to improve cycling stability.
Publications
Hongwei He’s publication record includes articles in internationally recognized journals related to electrochemistry, materials science, and battery technology. His work frequently addresses aqueous zinc-ion batteries, electrolyte optimization, advanced electrode materials, and energy storage mechanisms. [2][3]
Research Impact
The available citation metrics indicate broad scholarly recognition of Hongwei He’s published research. His studies support continued advancements in rechargeable battery technologies and provide valuable scientific insights for researchers working in electrochemistry, materials science, renewable energy, and energy storage engineering. The citation performance reflects the relevance and continued use of his work within the academic literature.[1]
Award Suitability
Hongwei He demonstrates several characteristics commonly associated with research excellence, including a sustained publication record, measurable citation impact, and recognized contributions to aqueous secondary battery research.
Conclusion
Hongwei He has established an academic profile characterized by meaningful contributions to aqueous secondary battery research, electrochemical materials, and sustainable energy storage technologies. His publication record, citation performance, and continuing research activities demonstrate active participation in addressing scientific challenges associated with modern rechargeable batteries.
External Links
References
- Elsevier. (n.d.). Scopus author details: Hongwei He, Author ID 55916112000. Scopus.
https://www.scopus.com/pages/authors/55916112000 - An inorganic interfacial layer with Cl− repelling capability for highly reversible zinc anodes in seawater-based zinc-ion batteries. Materials Letters, 414, 140597.
https://doi.org/10.1016/j.matlet.2026.140597 - Enhancing physicochemical and antibacterial properties of pectin-based films via PA-Zn nanoparticle doping for antimicrobial food packaging application. Journal of Stored Products Research, 116, 102968.
https://doi.org/10.1016/j.jspr.2026.102968