Oussama Baaloudj | Engineering | Young Scientist Award

Oussama Baaloudj | Engineering | Young Scientist Award

Università degli Studi della Basilicata | Italy

Dr. Oussama Baaloudj is a dedicated postdoctoral researcher and process engineer whose work centers on advancing sustainable water treatment and environmental process engineering. He is currently contributing to innovative research at the University of Basilicata, where he plays a key role in the development and validation of decentralized urban wastewater treatment systems within the PRIMA SAFE project, a multinational initiative focused on promoting safe and sustainable water reuse in agriculture, food production, and environmental management. His career reflects a strong international dimension, with research experiences across Italy, Canada, France, and Algeria, allowing him to collaborate effectively in diverse academic and industrial settings. Previously, he worked as a part-time researcher at the University of Houari Boumediene, where he contributed to projects in process and reaction engineering within the Laboratory of Reaction Engineering. His doctoral internship at the University of Quebec in Trois-Rivières strengthened his expertise in designing and synthesizing advanced sillenite-based photocatalysts, further enhancing his interdisciplinary research capabilities. A highly productive researcher, he has published extensively in high-impact journals and accumulated more than 1,500 citations, showcasing the visibility and relevance of his contributions to the scientific community. His excellence has been recognized through notable honors, including the Scopus Award in 2022 and the FEEM Health Committee Research Award in 2025. Beyond his research activities, he has served as Guest Editor for journals such as Catalysts and ChemEngineering, and has acted as a peer reviewer for more than 50 scientific manuscripts, contributing to the quality and integrity of scholarly publishing. Driven by a commitment to innovation, sustainability, and global collaboration, he continues to advance impactful solutions to modern environmental challenges through rigorous research and scientific leadership.

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Featured Publications

Ammasi Periasamy | Engineering | Best Researcher Award

Ammasi Periasamy | Engineering | Best Researcher Award

University of Virginia | United States

Dr. Periasamy is an internationally renowned scientist recognized for his groundbreaking contributions to the development of advanced optical microscopy techniques for imaging and analyzing single cells, tissues, and living organisms. His pioneering research focuses on designing and developing cutting-edge optical methodologies to study molecular interactions and cellular processes in real time. A major highlight of his recent work is the development of the Fluorescence Lifetime Redox Ratio (FLIRR), an innovative technique used to investigate cellular metabolism and mitochondrial dysfunction, with promising applications in the early detection of prostate cancer and its correlation with PSA levels. Widely regarded as one of the pioneers of fluorescence lifetime imaging microscopy (FLIM), Dr. Periasamy has made significant advances in monitoring calcium oscillations within living cells and developing 2- and 3-color confocal, multiphoton, and FLIM-based Förster resonance energy transfer (FRET) imaging systems for visualizing protein interactions in living specimens. His prolific scholarly output includes over 185 refereed journal publications, numerous book chapters, and proceedings, along with more than 200 invited lectures at national and international platforms. As a respected leader in his field, he has edited three books and serves as the series editor for the “Cellular and Clinical Imaging” book series, encompassing 11 volumes. Dr. Periasamy also plays a key role in the global microscopy community as the chairperson and organizer of the annual SPIE conference on Multiphoton Microscopy in the Biomedical Sciences since 2001 and conducts a highly regarded hands-on training workshop on FLIM, FRET, and metabolic imaging at the University of Virginia each year. In recognition of his outstanding scientific achievements and contributions to optical microscopy, he was elected a Fellow of the SPIE Optical Society in 2012.

Profile: Scoups | Orcid | Google Scholar

Featured Publications

Alam, S. R., Mahadevan, M. S., & Periasamy, A. (2023). Detecting RNA–Protein Interactions with EGFP-Cy3 FRET by Acceptor Photobleaching. Current Protocols, 3(2), e689.

Norambuena, A., Sun, X., Wallrabe, H., Cao, R., Sun, N., Pardo, E., Shivange, N., Wang, D. B., Post, L. A., Ferris, H. A., Hu, S., Periasamy, A., & Bloom, G. S. (2022). SOD1 mediates lysosome-to-mitochondria communication and its dysregulation by amyloid-β oligomers. Neurobiology of Disease, 169, Article 105737.

Zhang, J., Wallrabe, H., Siller, K., Mbogo, B., Cassidy, T., Alam, S. R., & Periasamy, A. (2025). Measuring metabolic changes in cancer cells using two-photon fluorescence lifetime imaging microscopy and machine-learning analysis. Journal of Biophotonics, 18, e202400426.

 Alam, S. R., Wallrabe, H., Christopher, K. G., Siller, K. H., & Periasamy, A. (2022). Characterization of mitochondrial dysfunction due to laser damage by 2-photon FLIM microscopy. Scientific Reports, 12, Article 11938.

Zhou, L., & El-Deiry, W. S. (2009). Multispectral fluorescence imaging. Journal of Nuclear Medicine, 50(10), 1563-1566.

Mohammad Ali Nasiri | Materials Science | Excellence in Citation Achievement Award

Mohammad Ali Nasiri | Materials Science | Excellence in Citation Achievement Award

university of valencia -Instituto de Ciencia Molecular (ICMOL) | Spain

Dr. Mohammad Ali Nasiri is a distinguished researcher and innovator with expertise in micro- and nano-electronic device fabrication, cleanroom processing, and advanced materials characterization. With over five years of hands-on experience in cleanroom environments, he has mastered key fabrication techniques including thin-film deposition, electrical contact formation, dry etching, and photolithographic mask preparation, all of which are critical to the development of high-performance electronic and optoelectronic systems. His technical proficiency extends to a wide array of advanced characterization methods such as AFM, XRD, XPS, SEM, FESEM, FTIR, spectroscopic ellipsometry, and electrochemical analysis, enabling him to conduct precise evaluations of material properties and performance. Holding dual master’s degrees in Aeronautical Engineering and Nanomaterials Science, Dr. Nasiri integrates interdisciplinary expertise in thermodynamics, applied mathematics, and materials physics to address complex challenges in energy and electronic device research. He completed his PhD at the University of Valencia’s Institute of Molecular Science (ICMOL), where his research, titled “Advances in Hybrid Energy Devices: Integrating Thermoelectric Materials via Fabrication, Characterization, and Modeling,” focused on sustainable energy conversion through thermoelectric materials. His studies on metallic thin films, conductive polymer nanocomposites, and lignin-based membranes yielded significant advancements in thermoelectric efficiency and ionic transport understanding. Notably, he developed three innovative thermal conductivity measurement setups, demonstrating both engineering ingenuity and scientific depth. Currently a postdoctoral researcher at the Institute of Materials Science (ICMUV), University of Valencia, Dr. Nasiri is developing perovskite-based photodetectors for sensor and biomedical imaging applications. His work embodies the fusion of nanotechnology, materials innovation, and sustainability, contributing to the next generation of clean energy and optoelectronic technologies.

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Featured Publications

1. Nasiri, M. A., Cho, C., Culebras, M., & Cantarero, A. (2024). Back mirror-free selective light absorbers for thermoelectric applications. Advanced Optical Materials, 16(12), 2402079. https://doi.org/10.1002/adom.202402079

2. Nasiri, M. A., Cho, C., Culebras, M., & Cantarero, A. (2024). Ultrathin transparent nickel electrodes for thermoelectric applications. Advanced Materials Interfaces, 11(5), 2300705. https://doi.org/10.1002/admi.202300705

3. Muddasar, M., Nasiri, M. A., Cantarero, A., Gómez, C., Culebras, M., & Collins, M. N. (2024). Lignin-derived ionic conducting membranes for low-grade thermal energy harvesting. Advanced Functional Materials, 34(12), 2306427. https://doi.org/10.1002/adfm.202306427

4. Muddasar, M., Menéndez, N., Quero, Á., Nasiri, M. A., Cantarero, A., Gómez, C. M., Culebras, M., & Collins, M. N. (2024). Highly-efficient sustainable ionic thermoelectric materials using lignin-derived hydrogels. Advanced Composites and Hybrid Materials, 7(2), 47.

Mohamed Taieb Krakdia | Engineering | Best Researcher Award

Mohamed Taieb Krakdia | Engineering | Best Researcher Award

University of Gabes | Tunisia

Mr. Mohamed Taieb Krakdia is a distinguished Tunisian academic and educator with a long and impactful career in the Ministry of Education, where he has served in various capacities, including Distinguished Senior Professor of Exceptional Degree, Senior Professor Emeritus of Secondary Education, and Senior Secondary School Teacher in Sidi Bouzid. Beginning his teaching career after earning the CAPES diploma, he has dedicated more than two decades to shaping the educational landscape in Tunisia while also pursuing advanced research in renewable energy and electrical engineering. He holds a Professional Master’s Degree in Renewable Energies and Energy Efficiency from ISET Sidi Bouzid, an Engineering Master’s Degree in Electrical Engineering from Université Elhadj Lakhder in Algeria, and is currently engaged in doctoral studies at ENIG Tunisia, focusing on the optimization of renewable energy resources in microgrids. His research interests revolve around integrating renewable energy sources such as photovoltaic systems, wind power, and solid oxide fuel cells into advanced microgrid structures with efficient energy storage and control strategies. He has contributed to the academic literature with publications including “Sliding-Mode and Lyapunov Function Based Control for a DC Microgrid with Renewable Generation, a Solid Oxide Fuel Cell, and Battery Storage” and “Control for a DC Microgrid for Photovoltaic–Wind Generation with a Solid Oxide Fuel Cell, Battery Storage, Dump Load (Aqua-Electrolyzer), and Three-Phase Four-Leg Inverter.” Alongside his academic pursuits, he is proficient in a range of technical and simulation tools such as MATLAB, Autocad, C/C++, and microcontroller programming, underscoring his commitment to both theoretical advancement and practical innovation in renewable energy systems.

Profile: Orcid

Featured Publications

  • Krakdia, M. T., & Sbita, L. (2024). Sliding-mode and Lyapunov function based control for a DC microgrid with renewable generation, a solid oxide fuel cell and battery storage. In Advances in Renewable Energy and Power Systems  Springer.

  • Krakdia, M. T., & Sbita, L. (2025). Control for a DC microgrid for photovoltaic–wind generation with a solid oxide fuel cell, battery storage, dump load (aqua-electrolyzer) and three-phase four-leg inverter (4L4W). Clean Technologies, 7(3), 79.

Huaiyi Guan | Engineering | Best Researcher Award

Huaiyi Guan | Engineering | Best Researcher Award

Naval University of Engineering | China

Huaiyi Guan is an engineer and doctoral candidate at the Naval University of Engineering, specializing in Navigation, Guidance, and Control (GNC). His research primarily focuses on signal processing challenges within satellite navigation systems, with a particular emphasis on the BeiDou Radio Determination Satellite Service (RDSS). Guan’s innovative contributions involve high-fidelity modeling of RDSS uplink signals to address adjacent-channel interference issues with other Global Navigation Satellite Systems (GNSS). By developing novel suppression algorithms, his work strengthens the reliability of multi-system integrated navigation, ensuring robust performance in complex electromagnetic environments. His research holds significant relevance for high-integrity autonomous systems, including autonomous vehicles and unmanned aerial vehicles (UAVs), which rely on precise and secure navigation solutions. Dedicated to advancing navigation science, Guan continues to contribute insights into GNSS signal integrity, geomagnetic disturbance impacts, and the future of resilient satellite-based navigation systems that support critical operations in aerospace and maritime domains.

Publication Profile

Orcid

Education

Huaiyi Guan is currently pursuing his doctoral degree in Navigation, Guidance, and Control (GNC) at the Naval University of Engineering, China. His doctoral research emphasizes satellite signal processing, focusing on the BeiDou Radio Determination Satellite Service (RDSS) and its integration with other Global Navigation Satellite Systems (GNSS). Guan’s academic journey has been shaped by his strong foundation in engineering and applied sciences, with a particular inclination toward advanced communication systems, navigation technologies, and signal modeling. His graduate-level research involves creating high-fidelity signal models that address electromagnetic interference, thereby contributing to the global advancement of navigation reliability and system integrity. Through his academic training, he has gained expertise in electromagnetic compatibility, multi-system GNSS integration, and applied algorithm development. Guan’s doctoral education reflects a commitment to both theoretical research and practical application, aiming to bridge the gap between navigation science and real-world demands of resilient autonomous and defense systems.

Experience

As an engineer and doctoral researcher at the Naval University of Engineering, Huaiyi Guan has cultivated expertise in satellite navigation, signal processing, and multi-system integration. His experience lies in analyzing the unique challenges of the BeiDou RDSS two-way active architecture, focusing on its signal compatibility and interference with other GNSS constellations. Guan has developed suppression algorithms to mitigate adjacent-channel interference, thereby improving the performance of integrated navigation systems in complex electromagnetic environments. His practical research experience includes studying the influence of geomagnetic disturbances on GNSS-based navigation and evaluating overseas maritime search and rescue system development. While his career is at an early stage, his applied research skills demonstrate the potential for impactful contributions to both academia and industry. Guan’s background highlights an ability to combine theoretical modeling with real-world problem-solving, supporting the development of autonomous platforms such as UAVs, ships, and vehicles that require reliable navigation integrity.

Honors and Awards

Currently in the early stages of his academic career, Huaiyi Guan has not yet received formal awards or honors; however, his doctoral research has already positioned him as a promising contributor in the field of navigation and signal processing. His work on RDSS interference modeling and suppression algorithms directly addresses global challenges in ensuring GNSS compatibility and integrity, a contribution that aligns with international priorities in aerospace and autonomous technologies. Guan’s studies on geomagnetic disturbances and their impact on GNSS navigation systems further reflect his innovative research trajectory, showing promise for recognition in the near future. While formal accolades may not yet be listed, his ongoing contributions represent the foundation for future distinctions in engineering research. His dedication to advancing high-integrity navigation solutions for critical platforms underscores his potential to achieve significant honors in both scientific and technological innovation within his specialized field.

Research Focus

Huaiyi Guan’s research focus lies at the intersection of satellite navigation, signal processing, and system integrity. His primary work addresses the BeiDou Radio Determination Satellite Service (RDSS), a unique two-way active navigation system, and its compatibility with other Global Navigation Satellite Systems (GNSS). He has developed high-fidelity models of RDSS uplink signals to quantify adjacent-channel interference and designed novel suppression algorithms to reduce signal degradation. This research enhances the robustness of multi-system integrated navigation, especially in challenging electromagnetic environments. Guan also investigates the impact of geomagnetic disturbances on GNSS positioning systems, aiming to improve resilience against natural space-weather effects. His research contributes to ensuring reliable navigation for high-integrity autonomous systems such as UAVs, autonomous vehicles, and maritime applications. By advancing both theoretical modeling and applied algorithm development, Guan plays a key role in shaping the next generation of secure, interference-resistant global navigation technologies.

Publications

  • Assessing the Influence of Geomagnetic Disturbances on GNSS Navigation and Positioning Systems

  • Analysis of the Current Development Status of Overseas Maritime Search and Rescue Systems

Conclusion

In conclusion, Huaiyi Guan exemplifies the qualities of a dedicated and innovative researcher in the field of Navigation, Guidance, and Control. His pioneering work on signal compatibility, interference suppression, and geomagnetic disturbance analysis demonstrates both technical depth and practical relevance, particularly in strengthening the integrity of satellite-based navigation systems. Although at an early stage of his career, his doctoral research already addresses globally significant challenges, offering solutions that support the reliability of autonomous systems and critical navigation infrastructures. With a strong foundation in engineering, a clear research vision, and the potential for impactful contributions, Huaiyi Guan is a deserving candidate for recognition under the Research Award category.

Mihaela Rusu | Materials Science | Citation Visionary in Industry Award

Mihaela Rusu | Materials Science | Citation Visionary in Industry Award

Institute of Medical Engineering | Germany

Dr. Mihaela Rusu is a Romanian-born scientist specializing in polymer chemistry, biomaterials, and cardiovascular regenerative medicine in Romania, she pursued her undergraduate studies in chemistry and physics at the University of Bucharest. She earned her PhD at the Max Planck Institute for Colloids and Interfaces, Golm, Germany, with a thesis on thermoreversible polymers in polyelectrolyte multilayers. Her career spans both academia and industry, including leadership roles in multinational companies such as Koninklijke DSM, where she managed R&D projects in functional coatings, biodegradable polymers, and biomedical materials. She has also contributed as a consultant and evaluator for EU research and innovation programs. she has been deeply involved in postdoctoral and teaching roles at RWTH Aachen University and the Helmholtz Institute, focusing on myocardial infarction remodeling and targeted drug delivery systems. Her expertise bridges interdisciplinary areas, from material science and nanotechnology to biomedicine. Dr. Rusu has an extensive publication record. She actively collaborates internationally, mentors students, and participates in scientific project management. Fluent in Romanian and English, with working knowledge of German and Dutch, she continues to contribute to cutting-edge research at the intersection of materials science and medicine.

Publication Profile

‪Mihaela Rusu‬ – ‪Google Scholar‬

Education

Dr. Mihaela Rusu earned her degree in Chemistry and Physics from the University of Bucharest specializing in physical chemistry. She pursued doctoral studies at the Max Planck Institute for Colloids and Interfaces, Golm, Germany where she completed a PhD thesis titled “Phase Transition of Thermoreversible Polymers in Polyelectrolyte Multilayers.” During this period, she also attended two specialized modules on Biomimetic Systems at the International Max Planck Research School.  she advanced her training in polymer sciences by completing the Top Opleiding Polymeren courses (Modules A2/A3) at Eindhoven University of Technology in the Netherlands. she pursued postdoctoral research at the RWTH Aachen University Medical Faculty and Helmholtz Institute, focusing on cardiovascular biomaterials. she began postdoctoral studies at Helmut Schmidt University, Hamburg, within the Faculty of Electrical Engineering and Medical Engineering. Her education integrates interdisciplinary expertise spanning chemistry, polymers, nanotechnology, biomaterials, and biomedical engineering, giving her a strong foundation for innovative research at the interface of materials science and medicine.

Experience

Dr. Rusu began her career as a student assistant in electrochemistry at the University of Bucharest before becoming Project Manager and Quality Manager at S.C. Biotechnos S.A., Romania, overseeing structured water and cosmetic laboratories. she led patent implementation for Estee Lauder and coordinated structured water technology research with Heraklion University, Greece. In academia, she supervised MSc students at IMPRS Golm-Berlin. At Koninklijke DSM, Netherlands she managed interdisciplinary R&D projects, including biodegradable polymers for drug delivery, functional coatings, and regenerative medicine applications, and directed subsidiary projects such as “My Vitamin. she worked as a consultant for TNO Eindhoven and transitioned into biomedical research at RWTH Aachen University’s Institute for Molecular Cardiovascular Research  focusing on post-myocardial infarction remodeling. She coordinated Indo-German BMBF projects, mentored Erasmus Mundus students, and evaluated Horizon and Horizon Europe proposals. she has worked at the Helmholtz Institute on thermo-magnetic responsive biomaterials for targeted drug delivery. Her career demonstrates a unique blend of industrial innovation, academic research, and international collaboration.

Honors and Awards

Dr. Rusu’s career reflects recognition through high-impact research roles, scientific leadership, and EU-level contributions rather than conventional academic prize awards. She has been entrusted as an evaluator and rapporteur for the European Commission’s Horizon and Horizon Europe funding programs, highlighting her expertise and credibility in multidisciplinary research assessment. As a project leader and scientific manager at Koninklijke DSM, she coordinated cross-sector collaborations and innovative product developments that bridged industry and biomedical applications. Her leadership in Indo-German collaborations under the BMBF framework (IGSTC) fostered significant international scientific exchange. She has supervised and mentored numerous graduate, doctoral, and postdoctoral researchers, contributing to their professional growth and scientific output. Dr. Rusu has also been recognized as a program coordinator for international internships and exchange mentor for Erasmus Mundus students, enabling scientific capacity-building and cultural exchange. Her contributions are validated by the impact of her publications in materials science, biomaterials, and cardiovascular medicine. While her record emphasizes practical achievements, leadership, and innovation, her sustained involvement in high-level research evaluation panels signifies her as a respected figure in European and global scientific communities.

Research Focus

Dr. Mihaela Rusu’s research integrates polymer science, biomaterials engineering, and cardiovascular regenerative medicine. She specializes in thermo- and magneto-responsive biodegradable polymers for targeted drug delivery systems. Her work focuses on the design of fiber-based scaffolds that enable in vivo monitoring and on-demand drug release, with applications in tissue regeneration and controlled therapeutic delivery. She investigates the interface between biomaterials and cell membranes, exploring how drug release kinetics influence cellular responses. In cardiovascular medicine, she examines the role of the collagen matrix, chemokines, and chemokine receptors in ischemia/reperfusion injury and post-myocardial infarction tissue remodeling. Earlier in her career, she contributed significantly to functional coatings, biodegradable polymers for drug delivery, and nanostructured surface technologies in industrial R&D. Her interdisciplinary approach bridges nanotechnology, polymer physics, and biomedical engineering, with an emphasis on translating materials science innovations into clinical and industrial applications. She also engages in microscopy-based material characterization and the development of biomimetic surfaces for medical devices. Through international collaborations, particularly Indo-German and EU-funded projects, she advances knowledge on biomaterial–tissue interactions, aiming to improve patient outcomes in cardiovascular diseases and regenerative medicine.

Publications

  • Coil-to-Globule Transition of PNIPAM Graft Copolymers with Charged Side Chains

  • Adsorption of Novel Thermosensitive Graft-Copolymers: Core–Shell Particles Prepared by Polyelectrolyte Multilayer Self-Assembly

  • Biomechanical Assessment of Remote and Postinfarction Scar Remodeling Following Myocardial Infarction

  • Vitamin C as Scavenger of Reactive Oxygen Species During Healing After Myocardial Infarction

  • Recent Advancements of Specific Functionalized Surfaces of Magnetic Nano- and Microparticles as a Theranostics Source in Biomedicine

  • Neutrophils Modulate Fibroblast Function and Promote Healing and Scar Formation After Murine Myocardial Infarction