Sadegh Kaviani | Renewable Energy Technologies | Best Researcher Award

Sadegh Kaviani | Renewable Energy Technologies | Best Researcher Award

A.B. Nalbandyan Institute of Chemical Physics, National Academy of Sciences | Armenia 

Dr. Sadegh Kaviani is an accomplished computational chemist and postdoctoral researcher at the A.B. Nalbandyan Institute of Chemical Physics, National Academy of Sciences of Armenia. His research expertise lies in computational materials science, where he employs density functional theory (DFT), molecular dynamics (MD), and machine learning (ML) to explore, predict, and optimize advanced nanomaterials for energy storage, catalysis, and solar energy conversion. With a strong interdisciplinary background, he bridges theoretical modeling with practical material applications aimed at addressing the world’s growing energy and environmental challenges. Dr. Kaviani earned his Ph.D. in Physical Chemistry and has previously worked as a postdoctoral researcher at Kazan Federal University (Russia), contributing to pioneering studies on solid-state and hybrid electrolytes. His current work at the National Academy of Sciences of Armenia focuses on solid polymer electrolytes, covalent organic frameworks (COFs), perovskite solar cells, and ionic liquids, integrating AI-based predictive tools to design efficient and sustainable energy materials. Throughout his career, Dr. Kaviani has demonstrated outstanding research productivity and impact. He has authored or co-authored over 64 peer-reviewed journal publications in high-impact international journals indexed in SCI, Scopus, and Web of Science. His scholarly work has attracted more than 1,000 citations, achieving an h-index of 18 and an i10-index of 49 (as per Google Scholar). This citation record reflects both the quality and global relevance of his contributions to computational chemistry and materials science. He has also published one book (ISBN-registered) that synthesizes theoretical advances in the modeling of functional materials for energy applications. Dr. Kaviani’s research portfolio includes three major completed and ongoing projects, focusing on the atomistic understanding of ion transport, interfacial stability, and energy conversion mechanisms. His innovative studies on COF-based polymer electrolytes and ionic-liquid-assisted perovskite interfaces have opened new pathways for the design of high-performance batteries and solar devices. His integrative modeling approach has set new standards for computational evaluation of hybrid materials, combining quantum chemistry with data-driven optimization. Beyond research, Dr. Kaviani actively contributes to the scientific community as an Editorial Board Member for Theoretical Physics and Quantum Mechanics (Hill Publishing) and as a peer reviewer for more than 45 international journals, having completed over 150 reviews. He also collaborates internationally with researchers from China, India, Mexico, and South Africa, promoting global scientific exchange. A passionate advocate for computational innovation in sustainable technologies, Dr. Sadegh Kaviani stands out as a researcher whose academic excellence, integrity, and innovation continue to influence the next generation of material scientists. His record of productivity, international collaboration, and scientific service makes him a deserving nominee for the Best Researcher Award under the International Research Awards 2025.

Profiles: Orcid | Google Scholar

Featured Publications

Kaviani, S. (2025). Covalent organic framework-based solid polymer electrolytes for metal-ion batteries: Pioneering the future of DFT, MD, and ML techniques. Energy Storage Materials. https://doi.org/10.1016/j.ensm.2025.104671

Kaviani, S. (2025). Enhanced anodic performance of CTF0 monolayer for Li-ion batteries through F and Si co-doping: A DFT insight. Colloids and Surfaces A: Physicochemical and Engineering Aspects. https://doi.org/10.1016/j.colsurfa.2024.135752

Kaviani, S. (2025). A DFT study on an 18-crown-6-like-N8 structure as a material for metal ion storage: Stability and performance. Sustainable Energy & Fuels. https://doi.org/10.1039/D5SE00333D

Kaviani, S. (2025). Improving excited-state dynamic properties with the help of metalide character and excess electrons: Earlier transition-metal pairing with superalkali clusters. New Journal of Chemistry. https://doi.org/10.1039/D5NJ00827A

Kaviani, S. (2025). Stacking interactions in stabilizing supramolecular assembly of M[9C]₂M complexes: Dynamic stability with remarkable nonlinear optical features. Physical Chemistry Chemical Physics. https://doi.org/10.1039/D4CP04052J

Kaviani, S. (2024). A DFT modeling of 4-cyclohexene-1,3-dione embedded in covalent triazine framework as a stable anode material for Li-ion batteries. Materials Chemistry and Physics. https://doi.org/10.1016/j.matchemphys.2024.129592

Kaviani, S. (2024). A DFT-based design of B/N/P-co-doped oxo-triarylmethyl as a robust anode material for magnesium-ion batteries. Journal of Power Sources. https://doi.org/10.1016/j.jpowsour.2024.234425

Kaviani, S. (2022). First-principles study of the binding affinity of monolayer BC6N nanosheet: Implications for drug delivery. Materials Chemistry and Physics. https://doi.org/10.1016/j.matchemphys.2021.125375

 

 

Wenhao Pu | Renewable Energy | Excellence in Research Award

Assoc. Prof. Dr. Wenhao Pu | Renewable Energy | Excellence in Research Award

Nanjing University of Aeronautics and Astronautics | China

Dr. WenHao Pu is an Associate Professor at the College of Energy and Power Engineering, Nanjing University of Aeronautics and Astronautics (NUAA), China. His research interests encompass dense gas-solid flows, computational fluid dynamics, numerical heat and mass transfer, waste heat utilization, solar thermal utilization, compression energy storage systems, and additive manufacturing heat exchange technologies. Dr. Pu has authored 85 publications, with his most recent work focusing on thermal characteristics of heat sinks with embedded phase change materials in triply periodic minimal surfaces, published in the International Journal of Thermal Sciences. His research contributions have been cited 1322 times, and he has an h-index of 1. These metrics reflect the early stage of his research career and the specialized nature of his work. His academic journey includes a Ph.D. in Energy and Environment from Southeast University followed by a Postdoctoral Fellowship at NUAA’s College of Energy and Power Engineering. Dr. Pu has been serving as an Associate Professor at NUAA since 2011 and was a Visiting Scholar at the University of Nevada, Las Vegas. Dr. Pu’s work is instrumental in advancing the understanding and application of thermal management systems, with implications for energy efficiency and sustainable technologies.

Profiles: Scopus | Orcid

 

Featured Publications

“Thermal characteristics study of a heat sink with embedded phase change material (PCM) in the triply periodic minimal surfaces (TPMS)”.

“Thermal performance analysis on steady-state and dynamic response characteristic in solar tower power plant based on supercritical carbon dioxide Brayton cycle”.

“Performance study of a supercritical carbon dioxide energy storage system with non-uniform graded compression heat recovery”.

“Experimental and numerical investigations on the intermittent heat transfer performance of phase change material (PCM)-based heat sink with triply periodic minimal surfaces (TPMS)”.

Xiang Ke | Energy storage materials | Best Researcher Award | 13313

Assoc. Prof. Dr. Xiang Ke | Energy storage materials | Best Researcher Award 

Assoc. Prof. Dr. Xiang Ke, Guizhou University, China

Assoc. Prof. Dr. Xiang Ke is an esteemed researcher at Guizhou University, China, specializing in biomedical polymers and artificial organs. Holding a Ph.D. from Sichuan University under the supervision of Prof. Jianshu Li, his work focuses on bioadhesives, wound healing, and biomineralization-inspired materials. Dr. Ke has published extensively in high-impact journals such as Chem. Eng. J., ACS Appl. Mater. Interfaces, and Biomaterials Science, contributing significantly to advancements in medical biomaterials. His research integrates natural small molecules, supramolecular chemistry, and nanotechnology to develop innovative solutions for healthcare applications.

Profile

Scopus

🎓 Early Academic Pursuits

Assoc. Prof. Dr. Xiang Ke embarked on his academic journey with a keen interest in chemistry and materials science. He pursued his Ph.D. at Sichuan University, specializing in biomedical polymers and artificial organs under the mentorship of Prof. Jianshu Li. His doctoral research laid a strong foundation in biomaterials, bioadhesives, and tissue engineering, focusing on the development of natural polymer-based medical adhesives and coatings. Through rigorous study and experimentation, he mastered techniques in polymer chemistry, biocompatible materials, and nanotechnology, setting the stage for his impactful research career.

👨‍🏫 Professional Endeavors

Dr. Xiang Ke is currently serving as an Associate Professor at Guizhou University, where he continues to contribute significantly to the fields of biomedical materials and chemical engineering. His work spans multiple disciplines, integrating chemistry, biomaterials, and medical applications. His academic role involves mentoring young researchers, supervising graduate students, and leading groundbreaking research projects that aim to revolutionize medical adhesives, wound healing solutions, and tissue regeneration.

🔬 Contributions and Research Focus

Dr. Ke’s research primarily focuses on biomaterial innovation and biomedical applications. Some of his key areas of expertise include:

  • Bioadhesives and Hydrogels: He has developed biodegradable, self-healing, and antibacterial bioadhesives that are highly effective in wound healing and tissue repair.
  • Nanotechnology in Medicine: His work incorporates nanomaterials for drug delivery, infection control, and regenerative medicine.
  • Biomineralization-Inspired Materials: He has advanced bone and hard tissue repair techniques through bioinspired materials.
  • Supramolecular Chemistry: His research explores small molecule-based supramolecular systems for enhanced medical and engineering applications.

Dr. Ke has an extensive publication record, with over a dozen papers in leading journals such as ACS Applied Materials & Interfaces, Chemical Engineering Journal, Biomaterials Science, and Advanced Healthcare Materials. His contributions have provided valuable insights into the development of next-generation biomaterials, with applications in orthopedic surgery, dental restoration, and regenerative therapies.

🏅 Accolades and Recognition

Dr. Ke’s research excellence has been acknowledged by numerous high-impact publications and citations. Some of his notable recognitions include:

  • High-impact journal publications in the fields of biomaterials, tissue engineering, and nanomedicine.
  • Collaboration with renowned scientists and research groups in biomedical engineering.
  • Editorial contributions to scientific journals and peer-reviewing roles in biomaterials and chemistry research.
  • Invited speaker at international conferences, sharing insights on biomedical innovations.

His work has earned wide recognition in academia and industry, establishing him as a key contributor to biomedical advancements.

🌍 Impact and Influence

Dr. Ke’s research has far-reaching implications in medicine and healthcare. His innovations in bioadhesives and nanotechnology-based biomaterials offer safer, more efficient, and cost-effective medical solutions. Some of the major impacts of his work include:

  • Advancing medical adhesives: His supramolecular bioadhesives are revolutionizing wound management, surgical applications, and tissue engineering.
  • Enhancing regenerative medicine: His contributions to biomineralization-inspired materials support bone repair and dental applications.
  • Influencing young researchers: As a mentor and academic, he is guiding future scientists and engineers in biomedical research.
  • Industry collaborations: His expertise in biomaterials and medical polymers has facilitated cross-disciplinary partnerships with healthcare and biotechnology companies.

🔮 Legacy and Future Contributions

Dr. Xiang Ke continues to push the boundaries of biomedical material science, with exciting future directions in:

  • Smart and responsive biomaterials for real-time monitoring and adaptive healing.
  • Advanced hydrogel-based wound dressings with antibacterial and regenerative properties.
  • Innovative nanomedicine approaches for targeted drug delivery and infection control.
  • Sustainable biomaterials that promote eco-friendly and efficient medical applications.

Publication Top Notes

Author: H., Wang, Hao, X., Ke, Xiang, S., Tang, Shuxian, J., Luo, Jun, J., Li, Jianshu

Journal: Small

Year: 2024

A Janus Adhesive Hydrogel with Integrated Attack and Defense for Bacteria Killing and Antifouling

Author: K., Ren, Kai, X., Ke, Xiang, M., Zhang, Miao, J., Xie, Jing, J., Li, Jianshu

Journal: BME Frontiers

Year: 2024

Natural small biological molecule based supramolecular bioadhesives with innate photothermal antibacterial capability for nonpressing hemostasis and effective wound healing.

Author: Xiang Ke, Shuxian Tang, Hao Wang, Yusong Cai, Zhiyun Dong, Mingjing Li, Jiaojiao Yang, Xinyuan Xu, Jun Luo, Jianshu Li

Journal: Biological and Medical Applications of Materials and Interfaces

Year: 2022

Robert Hahn | Renewable Energy Technologies | Outstanding Scientist Award

Robert Hahn | Renewable Energy Technologies | Outstanding Scientist Award

Dr Robert Hahn, Fraunhofer IZM, Germany

Dr. Robert Hahn leads the Micro Energy Group at Fraunhofer IZM in Berlin. 🎓 He earned his M.Sc. and Ph.D. in Electrical Engineering from the Technical University of Dresden in 1986 and 1990. Joining Fraunhofer IZM in 1994, he has driven numerous national and European projects on batteries, micro fuel cells, and hydrogen generators. 🔋 With 30 patents and over 100 publications, his research covers lithium-ion, aluminum-ion, and nickel-zinc batteries, plus hydrogen storage. 🚀 He coordinated the FP7 MATFLEXEND project and now leads the BMBF Zn-H2 project, focusing on micro-batteries and hydrogen storage systems. 🌟

Publication profile

Google scholar

Education

Dr. Robert Hahn is the head of the Micro Energy Group at Fraunhofer IZM in Berlin. He earned his M.Sc. (1986) and Ph.D. (1990) in Electrical Engineering from the Technical University of Dresden. He joined Fraunhofer IZM in 1994.

Teaching & Projects

He lectures on micro energy storage at the Technical University of Berlin. His team is prototyping micro-batteries and demonstrating hydrogen storage systems for industrial applications.

Research focus

Based on the provided publications, this researcher’s focus is on advancing battery technologies and energy systems. Their work spans various types of batteries, including aluminum-graphite and microbatteries, and involves enhancing performance and stability through novel materials and design approaches. Key contributions include developing high-performance aluminum batteries, planar micro fuel cells, and exploring recycling processes for lithium-ion batteries. Their research also addresses energy autonomy in sensor systems and innovations in power supplies. The integration of advanced materials and cutting-edge technologies is central to their work, aiming to improve energy storage and efficiency. 🔋🔬🔧

Publication top notes

An overview and future perspectives of aluminum batteries

Development of a planar micro fuel cell with thin film and micro patterning technologies

Planar self-breathing fuel cells

\Insights into the reversibility of aluminum graphite batteries

Closed-loop hydrometallurgical treatment of end-of-life lithium ion batteries: Towards zero-waste process and metal recycling in advanced batteries

Stability of planar PEMFC in printed circuit board technology

Physics with colder molecular ions: the Heidelberg Cryogenic storage ring CSR

Batteries and power supplies for wearable and ubiquitous computing

Polyacrylonitrile separator for high-performance aluminum batteries with improved interface stability

Energy autonomous sensor systems: Towards a ubiquitous sensor technology