Dr. Spyridon Kosionis | Quantum Optics | Research Excellence Award

Dr. Spyridon Kosionis | Quantum Optics | Research Excellence Award

Dr. Spyridon Kosionis | University of Patras | Greece

Spyridon G. Kosionis is a theoretical and computational physicist specializing in quantum nonlinear optics, nanophotonics, and quantum technologies. His research focuses on light–matter interactions in nanostructured quantum systems, including semiconductor quantum dots, quantum wells, and hybrid plasmonic–graphene structures. He investigates nonlinear optical responses, Kerr effects, four-wave mixing, pump–probe dynamics, resonance fluorescence, photon-statistics engineering, and quantum control of excitonic systems, addressing challenges such as phonon-induced decoherence. Kosionis combines analytical modeling and advanced numerical simulations to study exciton–plasmon and exciton–phonon interactions relevant to emerging quantum computing and nanophotonic platforms. His work contributes to the development of next-generation quantum and optoelectronic technologies. He has been involved in multiple national and international research projects, focusing on coherent light–matter dynamics and theoretical plasmonics. He has supervised master’s and PhD students, guiding research in nonlinear optical processes and quantum coherence. His studies advance the understanding of quantum control and light manipulation at the nanoscale. Kosionis actively contributes to scientific journals as a reviewer and participates in international collaborations. His research supports innovations in quantum information, nanophotonics, and optoelectronic device design. He has a strong publication record, with research widely cited in the fields of quantum optics and photonics. His work bridges fundamental theory and practical applications in emerging quantum technologies. Kosionis continues to explore advanced modeling techniques for controlling quantum systems and enhancing photonic functionalities.

Profile: Google Scholar

Featured Publications

Kosionis, S. G., Terzis, A. F., Sadeghi, S. M., & Paspalakis, E. (2012). Optical response of a quantum dot–metal nanoparticle hybrid interacting with a weak probe field. Journal of Physics: Condensed Matter, 25(4), 045304.

Paspalakis, E., Evangelou, S., Kosionis, S. G., & Terzis, A. F. (2014). Strongly modified four-wave mixing in a coupled semiconductor quantum dot-metal nanoparticle system. Journal of Applied Physics, 115(8), 105.

Terzis, A. F., Kosionis, S. G., Boviatsis, J., & Paspalakis, E. (2016). Nonlinear optical susceptibilities of semiconductor quantum dot–metal nanoparticle hybrids. Journal of Modern Optics, 63(5), 451–461.

Kosionis, S. G., Terzis, A. F., Yannopapas, V., & Paspalakis, E. (2012). Nonlocal effects in energy absorption of coupled quantum dot–metal nanoparticle systems. The Journal of Physical Chemistry C, 116(44), 23663–23670.

Kosionis, S. G., Terzis, A. F., & Paspalakis, E. (2007). Optimal control of a symmetric double quantum-dot nanostructure: analytical results. Physical Review B, 75(19), 193305.

 

Prof. Dr. Jun Zhong | Modeling and Simulation | Best Researcher Award

Prof. Dr. Jun Zhong | Modeling and Simulation | Best Researcher Award

Prof. Dr. Jun Zhong | NCIAE | China

Jun Zhong is a leading researcher in computational materials science, focusing on the atomistic modeling of materials physics and chemistry. He specializes in molecular dynamics, density functional theory, and multi-scale simulations to study adhesion, lubrication, wear mechanisms, and corrosion inhibition in metals and alloys. His work includes the development of MEAM interatomic potentials and modeling surface segregation phenomena in advanced materials. He has investigated catalyst performance, mechanical-electrical property regulation, and deformation mechanisms in metals, composites, and graphene foams. Zhong has contributed to understanding nano-scale interactions, alloy surface behaviors, and interface adhesion. His research integrates computational and theoretical approaches to address challenges in aerospace materials, nanomaterials, and renewable energy technologies. He has authored high-impact publications in journals such as Phys. Rev. B, J. Phys. Chem. C, and Applied Surface Science. He has also written influential monographs on tribology, adhesion, and nanomechanics, widely recognized in the scientific community. Zhong has presented his work at numerous international conferences and workshops. He has been elected Member of the Institute of Physics (MInstP, UK) and recognized as a world-class scientific monograph author. His teaching excellence has been acknowledged in both China and the U.S. He has led and participated in multiple national and international research projects. His studies bridge atomistic modeling and practical applications, advancing materials engineering and aerospace technologies. His research impacts surface phenomena, alloy design, and energy-related materials. Zhong continues to push the boundaries of computational materials science, integrating theory and simulation for innovative solutions.

Profile: Orcid

Featured Publications

Zhang, Y., Zhu, H., Liu, F., Zhong, J., Lu, W., Wang, C., Wang, L., Wu, Z., & Li, B. (2025). Influence and regulation of amorphous layers on phonon transport at SiC/Si interface. International Journal of Heat and Mass Transfer.

Zhang, H., Xu, S., Zou, S., Zhou, H., Ouyang, W., & Zhong, J. (2025). Gas–solid phase separation of active Brownian particles under confinement of hard walls. Nanomaterials.

Ning, Y.-Q., Zhong, J., Jie, A., Zhou, X., Xue, X.-X., Ang, Y. S., & Zhao, Y.-Q. (2025). Designing the weak Fermi pinning and ferromagnetic van der Waals contacts to bilayer CrI3. Applied Physics Letters.

Nie, G., Zhong, F., Zhong, J., Zhu, H., & Zhao, Y.-Q. (2024). Engineering photoelectric conversion efficiency in two-dimensional ferroelectric Cs2PbI2Cl2/Sc2CO2 heterostructures. Applied Physics Letters, 124, 252903.

Nie, G., Zhong, F., Zhong, J., Zhu, H., & Zhao, Y.-Q. (2024). Engineering photoelectric conversion efficiency in two-dimensional ferroelectric Cs2PbI2Cl2/Sc2CO2 heterostructures. Applied Physics Letters.

 

Dr. Geetha D. V. | Crystallography | Best Researcher Award

Dr. Geetha D. V. | Crystallography | Best Researcher Award

Dr. Geetha D. V. | University of Mysore | India

Dr. Geetha D. V.’s research primarily focuses on the structural analysis and characterization of biologically and medicinally relevant compounds. She extensively utilizes X-ray crystallography and powder diffraction techniques to elucidate the three-dimensional structures of heterocyclic compounds, chalcones, indole derivatives, and hydrazones, providing detailed insights into their molecular packing and intermolecular interactions. Her work integrates quantum chemical computations, particularly Density Functional Theory (DFT), to investigate electronic properties, spectroscopic behavior, and reactivity patterns of novel molecules. She applies molecular docking and molecular dynamics simulations to study ligand–protein interactions, with special attention to antiviral targets like SARS-CoV-2 proteins, highlighting critical residues and interaction mechanisms. Additionally, Dr. Geetha explores Hirshfeld surface analysis to visualize and quantify intermolecular contacts and non-covalent interactions. Her research extends to the design and synthesis of novel heterocyclic molecules, combining experimental and computational approaches for structure–activity correlation. She has contributed to understanding drug-like properties, binding affinities, and stability profiles of therapeutic candidates. Her studies also involve electrostatic potential mapping, frontier molecular orbital analysis, and hydrogen-bonding evaluation, providing predictive insights for biological activity. The integration of crystallography, computational chemistry, and in-silico studies allows her to develop a comprehensive understanding of molecular behavior in both solid-state and biological environments. Her work consistently emphasizes innovation, molecular-level insight, and application to pharmacologically relevant systems, bridging experimental and theoretical chemistry. Dr. Geetha’s research contributes to rational drug design, molecular recognition studies, and advanced material analysis, reflecting a strong interdisciplinary approach in physical, computational, and medicinal chemistry.

Profile: Scopus 

Featured Publications

Karthik, V., Santhosh, C., Geetha, D. V., Chandini, K. M., Sindogi, K., Sridhar, M. A., & Sadashiva, M. P. (2026). Multifaceted exploration of benzyl 5-(p-tolyl)-1,3,4-thiadiazole-2-carboxylate: Spectroscopic, structural, and computational insights into its drug-like potential. Journal of Molecular Structure, 1350, 143963.

Geetha, D. V., Harisha, A. S., Karthik, V., Chanadana, S. N., Kavitha, H. D., Lakshminarayana, B. N., & Sridhar, M. A. (2026). X-ray structural analysis, quantum chemical computations, molecular docking, and molecular dynamics simulations of diethyl 5’-amino-3,3-dibromo-2,6-dicyano-1,2,3,4-tetrahydro-[1,1.3,1-terphenyl] 2,4-dicarboxylate. Journal of Molecular Structure, 1351, 144142.

Lakshminarayana, B. N., Sreenatha, N. R., Sharath, C. L., Geetha, D. V., Shivakumar, N., & Balakrishna, K. (2025). Synthesis and comparative investigations of DFT/B3LYP, B3PW91, CAM-B3LYP and HSEH1PBE methods applied to molecular structure, spectroscopic analysis, electronic properties of a novel hydrazone having triazole and pyrazole moiety. Results in Chemistry.

Al-Ostoot, F. H., Akhileshwari, P., Kameshwar, V. H., Geetha, D. V., Aljohani, M. S., Alharbi, H. Y., Khanum, S. A., & Sridhar, M. A. (2024). Structural and theoretical exploration of a multi-methoxy chalcone: Synthesis, quantum theory, electrostatics, molecular packing, DFT analysis, and in-silico anti-cancer evaluation. Heliyon, e33814.

Geetha, D. V., Sharath, C. L., Shivakumar, N., Lakshminarayana, B. N., Chandini, K. M., & Balakrishna, K. (n.d.). Novel series of hydrazones carrying pyrazole and triazole moiety: Synthesis, structural elucidation, quantum computational studies and antiviral activity against SARS-Cov-2.

Dr. Fatma Ouled Saad | Experimental Physics | Best Researcher Award

Dr. Fatma Ouled Saad | Experimental Physics | Best Researcher Award

Dr. Fatma Ouled Saad | ENIM | Tunisia

Ouled Saad Fatma is a researcher in energetic engineering whose work focuses on thermal processes, renewable energy systems, and advanced methods for improving energy efficiency. She has contributed to the development and optimization of solar desalination technologies, particularly through innovative mechanisms designed to enhance solar still productivity and overall thermal performance. Her studies also explore the application of phase change materials to improve heat storage and transfer, supporting more effective energy capture and utilization in sustainable systems. Beyond renewable technologies, she has conducted significant research in electrical resistance tomography, offering new approaches for analyzing material properties and characterizing porosity in complex media. Her academic contributions extend to teaching and supervising projects in areas such as thermodynamics, fluid mechanics, refrigeration systems, sensors, and materials science, where she plays an active role in guiding students in applied engineering practices. Through her combined efforts in research, teaching, and project supervision, she consistently promotes innovative thinking and practical solutions in energy engineering. Her work reflects a strong commitment to advancing environmentally responsible technologies and improving the performance of thermal and energy systems. She is recognized for her ability to integrate experimental methods with analytical modeling to address engineering challenges. Her diverse contributions support progress in sustainable energy, applied thermal sciences, and diagnostic techniques for engineering materials.

Profile: Scopus 

Featured Publications

Ouled Saad, F., Madiouli, J., Mihoubi, D., Shigidi, I., & Sghaier, J. (2026). Estimating talc and cellulose porosity under mechanical dewatering using electrical resistance tomography technique. Flow Measurement and Instrumentation, 107, 103124.

Ouled Saad, F., Madiouli, J., Chemkhi, S., Mankai, S., & Shigidi, I. (2024). Increasing the productivity and the thermal efficiency of conventional solar stills using a new rotating discs mechanism. International Journal of Environmental Science and Technology. (Advance online publication)

Ouled Saad, F., Mankai, S., Madiouli, J., Chemkhi, S., Shigidi, I., & Khan, M. I. (2024). Effect of phase change materials melting temperature on improving single slope solar still productivity. Journal of Energy Storage. (Advance online publication)

Ouled Saad, F., Aymen, S., Madiouli, J., Jalila, S., & Olivier, F. (2016). Quadrupole method: A new approach for solving the direct problem of electrical resistance tomography. Journal of King Saud University – Science.

 

Prof. Dr. Adel Mohamed | Materials Engineering | Research Excellence Award

Prof. Dr. Adel Mohamed | Materials Engineering | Research Excellence Award

Prof. Dr. Adel Mohamed | Suez University | Egypt

Prof. Adel Mohamed Amer Mohamed is a leading scholar in metallurgical and materials engineering, widely recognized for his influential research, academic leadership, and contributions to scientific advancement. His work spans advanced materials, electronic materials, metal matrix composites, theoretical modeling, electrocatalysis, and energy-storage systems, with a strong emphasis on modern materials innovation. He has produced an extensive research portfolio that includes high-impact journal publications, conference contributions, book chapters, and authored books reflecting both scientific depth and interdisciplinary relevance. Prof. Adel is consistently listed among the Stanford Top 2% Scientists, highlighting his global research visibility and strong citation indicators. His achievements extend beyond research into curriculum development, academic program enhancement, and quality assurance within higher education. He has played a central role in improving undergraduate and postgraduate academic structures while fostering a culture of scientific excellence. His leadership includes overseeing laboratory development, guiding student learning environments, and supporting scientific training initiatives. He has significantly contributed to strengthening industry–academia cooperation through collaborative projects, training programs, and strategic partnerships. Prof. Adel also actively participates in national scientific committees, reflecting his expertise in advanced materials and his role in shaping research directions. His editorial work and service as a reviewer for numerous journals demonstrate his commitment to maintaining high scientific standards. Dedicated to mentoring, he has supervised multiple postgraduate theses, helping shape the next generation of materials researchers. His research projects span diverse areas of application, including sustainable technologies, electrochemical systems, structural materials, and nanostructured composites. Through his continuous contributions to scientific research, academic development, and institutional growth, Prof. Adel Mohamed Amer Mohamed has established himself as a prominent figure in the field of materials engineering and a driving force behind the advancement of research and education.

Profiles: Scopus | Orcid

Featured Publications

Hsu, C.-Y., Ali, A. B. M., Jamal, Z. H., Mudhafar, M., Alsailawi, H. A., Abduvalieva, D., Mohamed, A. M. A., Adil, S. K., Alkahtani, H. M., & Mahariq, I. (2025). Transition metal-functionalized hexagonal bipyramidal boron clusters as high-performance electrocatalysts for hydrogen evolution reaction: A DFT study. International Journal of Hydrogen Energy.

Matli, P. R., Manohar, G., Abdelatty, R., Shakoor, R. A., Azeem, A., Lingala, S. S. R., Kotalo, R. G., & Mohamed, A. M. A. (2024). Characterization of microstructural and mechanical properties of hybrid Al/SiC/Al₂O₃ nanocomposites. Emergent Materials.

Moussa, M. E., Salem, M. M. M., Hamid, M. A., Gomaa, M. H., Abd-Elwahed, A., Ghayad, I. M., & Mohamed, A. A. (2024). Mechanical integrity and in vitro degradation behavior of Mg–Zn–Ca biodegradable alloy prepared by different casting technologies. International Journal of Metalcasting.

Mikky, Y. A., Bhran, A. A., El-Araby, R. Y., Mohamed, A. M. A., Gadallah, A. G., & Shoaib, A. M. (2024). Optimization of biodiesel–nanoparticle blends for enhanced diesel engine performance and emission reduction. Processes, 12(11), Article 2471.

Mohamed, A. M. A., Ibrahim, M. F., Zedan, Y., Samuel, E., Samuel, A. M., & Samuel, F. H. (2023). A study on the factors enhancing the high-temperature strength of B319.2-type alloys. International Journal of Metalcasting.

Prof. Byung Chang Suh | Biophysics | Research Excellence Award

Prof. Byung Chang Suh | Biophysics | Research Excellence Award

Prof. Byung Chang Suh | Daegu Gyeongbuk Institute of Science and Technology | South Korea

Byung-Chang Suh, Ph.D., is a professor in brain sciences whose research focuses on the molecular and cellular mechanisms that regulate neuronal excitability and signal transduction. He is widely recognized for advancing the understanding of ion channels, GPCR-mediated pathways, phosphoinositide signaling, and membrane repair processes in neuronal systems. His work highlights how key regulators such as PI(4,5)P₂, TMEM16 scramblases, and M3 receptors influence neuronal function and intracellular communication. He has contributed major insights into ion channel modulation, receptor cross-talk, and the molecular basis of sensory and behavioral regulation in model organisms. His publications span high-impact journals and address topics such as ligand-independent receptor activation, macropinocytosis, endosomal sorting, and neuropeptide-driven behavioral control. He is actively involved in editorial roles across multiple international journals in neuroscience, physiology, and endocrinology. His expertise is often sought through peer review for leading journals in the fields of cell biology, neurophysiology, and molecular signaling. His research productivity has earned institutional recognition for academic excellence. Beyond research, he is deeply committed to teaching, mentoring, and cultivating young scientific talent through undergraduate and pre-college research programs. His multidisciplinary approach integrates biophysics, molecular neuroscience, and cellular physiology to illuminate fundamental principles of brain function. His contributions continue to influence studies on neuronal signaling, disease-related pathways, and mechanisms of cellular homeostasis.

Profile: Orcid

Featured Publications

Jeong, D. J., Woo, J. N., Yun, T., Baek, M., & Suh, B. C. (2025). Kv7 channels as an important contributor to alcohol-induced modulation of neuronal excitability in neonatal rat superior cervical ganglion. Cells, 14(21), 1723.

Kim, B. I., Yeon, J. H., & Suh, B. C. (2025). Palmitoylation code and endosomal sorting regulate ABHD17A plasma membrane targeting and activity. International Journal of Molecular Sciences, 26(20), 10190.

Kim, J. E., Ko, W., Jin, S., Woo, J. N., Jung, Y., Bae, I., Choe, H. K., Seo, D., Hille, B., & Suh, B. C. (2025). Activation of TMEM16E scramblase induces ligand-independent growth factor receptor signaling and macropinocytosis for membrane repair. Communications Biology, 8, Article 35.

Kim, D. Y., Moon, K. M., Heo, W., Du, E. J., Park, C. G., Cho, J., Hahm, J. H., Suh, B. C., Kang, K. J., & Kim, K. (2024). A FMRFamide-like neuropeptide FLP-12 signaling regulates foraging-like behaviors in C. elegans. BMB Reports, 47, 100124.

Ko, W., Lee, E., Kim, J. E., Lim, H. H., & Suh, B. C. (2024). The plasma membrane inner leaflet PI(4,5)P₂ is essential for the activation of proton-activated chloride channels. Nature Communications, 15, 7008.

 

Dr. Nashiour Rohman | Physical Chemistry | Editorial Board Member

Dr. Nashiour Rohman | Physical Chemistry | Editorial Board Member

Dr. Nashiour Rohman | Sultan Qaboos University | Oman

Nashiour Rohman is a distinguished researcher in Chemistry and Material Science with extensive international experience spanning academia and postdoctoral research. His work encompasses physical chemistry, chemical sciences, and material science, with a strong focus on experimental and computational studies of surfactants, ionic liquids, and eco-friendly chemical processes. Over the years, he has contributed to high-impact journals exploring micellization, aggregation phenomena, pH-responsive drug carriers, and sustainable chemical reactions. Rohman has held prominent academic and research positions across institutions in India, Germany, Oman, China, France, and South Africa, reflecting his global collaborative engagements. His expertise integrates experimental investigations with theoretical and computational modeling, emphasizing sustainable and environmentally conscious chemical solutions. He has earned distinctions such as the Alexander von Humboldt Fellowship and CSIR Senior Research Fellowship, underlining his academic excellence and research leadership. Rohman’s contributions have significantly advanced understanding in chemical interactions, materials chemistry, and nanomaterials, influencing both industrial applications and fundamental science. His ongoing research continues to address key challenges in green chemistry, material innovation, and drug delivery systems, cementing his role as a leading figure in modern chemical sciences.

Profiles: Orcid | Google Scholar

Featured Publications

Al-Farsi, A., Khan, I., Rohman, N., Usmani, M. A., Bhat, A. H., & Al Hasani, A. (2025). Thermodynamic insights into micellization of surfactant tetradecyltrimethylammonium bromide in aqueous choline-based ionic liquid systems. Journal of Chemical & Engineering Data.

Al-Farsi, A., Khan, I., Tantray, A., Rehman, N., Husband, J., Al Hasani, A., & Nasser, M. S. (2025). Exploring the interactions and aggregation of DTAB and SDS in choline-based ionic liquids: A combined experimental and computational study. Colloids and Surfaces A: Physicochemical and Engineering Aspects.

Yamin, M., Rohman, N., Ghouri, Z. K., Syed, J. A., Skelton, A., & Ahmed, K. (2024). Unravelling pH/pKa influence on pH-responsive drug carriers: Insights from ibuprofen-silica interactions and comparative analysis with carbon nanotubes, sulfasalazine, and alendronate. Journal of Molecular Graphics and Modelling.

Rohman, N., Ahmed, K., Skelton, A. A., Mohiuddin, T., Khan, I., Selvaraj, R., & Yamin, M. (2023). Theoretical insights and implications of pH-dependent drug delivery systems using silica and carbon nanotube. Journal of Molecular Graphics and Modelling.

Rohman, N., Mohiuddin, T., & Khan, I. (2023). Dodecyltrimethylammonium bromide-styrene microemulsion dielectric investigation in aqueous media. Canadian Journal of Chemistry.

 

Dr. Vladislav Demyanov | Experimental Physics | Editorial Board Member

Dr. Vladislav Demyanov | Experimental Physics | Editorial Board Member

Dr. Vladislav Demyanov | Irkutsk State University | Russia

Prof. Vladislav Demyanov is a leading expert in radiowave physics, GNSS remote sensing, and near-Earth space research, with a primary focus on understanding ionospheric effects on satellite navigation systems. His research investigates ionospheric modelling, scintillation phenomena, and high-rate GNSS data applications for space weather monitoring. He has significantly contributed to assessing how solar radio emissions, geomagnetic disturbances, and ionospheric irregularities impact GPS, GLONASS, and DGNSS performance. Prof. Demyanov has developed adaptive ionospheric correction models and methods for GNSS integrity monitoring and positioning availability assessment, advancing navigation reliability. His work also explores carrier-phase analysis, multipath effects, and mitigation of electromagnetic interferences on transport and aerospace systems. He has authored numerous influential journal articles, book chapters, and conference presentations on ionospheric disturbances and their operational implications for GNSS. His patented technologies and software tools enable precise positioning error estimation, signal integrity verification, and real-time ionospheric monitoring. Prof. Demyanov is actively involved in academic publishing as an associate editor, guest editor, and reviewer for high-impact journals in space physics and satellite navigation. He has led and participated in international collaborative projects on machine-learning-based TEC forecasting and GNSS high-rate data analysis. His work supports advancements in geosciences, transportation safety, and space environment research. He continues to provide innovative solutions for navigation system optimization and space weather risk mitigation. His contributions bridge theoretical research and practical engineering applications, enhancing GNSS-based technologies. Through his research, he has established new methodologies for ionospheric observation and satellite signal analysis. Prof. Demyanov’s expertise has influenced both academic knowledge and industrial practices in radio-navigation and space physics. His ongoing work promotes safer, more reliable satellite navigation in dynamic space and geophysical conditions.

Profiles: Scopus | Orcid

Featured Publications

Demyanov, V. V., Danilchuk, E. I., Zhang, B., Ratnam, D. V., & Yasyukevich, Y. V. (2025). A carrier phase hybrid model for adjusting the procedures to process ionospheric radio sounding measurements with high temporal resolution. Advances in Space Research.

Danilchuk, E. I., & Demyanov, V. V. (2024). Testing carrier phase measurement detrending procedures and calculation of ionospheric scintillation indices. Conference paper.

Chen, C., Pavlov, I., Padokhin, A., Yasyukevich, Y., Demyanov, V., Danilchuk, E., & Vesnin, A. (2024). Galileo and BeiDou AltBOC signals and their perspectives for ionospheric TEC studies. Sensors.

Demyanov, V., Danilchuk, E., Sergeeva, M., & Yasyukevich, Y. (2023). An increase of GNSS data time rate and analysis of the carrier phase spectrum. Remote Sensing.

Yasyukevich, Y. V., Vesnin, A. M., Kiselev, A. V., Mylnikova, A. A., Oinats, A. V., Ivanova, V. A., & Demyanov, V. V. (2022). MITIGATOR: GNSS-based system for remote sensing of ionospheric absolute total electron content. Universe.

 

Dr. Majid Shahbabaei | Transport and Separation | Best Researcher Award 

Dr. Majid Shahbabaei | Transport and Separation | Best Researcher Award 

Dr. Majid Shahbabaei | Oden Institute for Computational Engineering and Sciences | United States

Majid Shahbabaei is a computational materials theorist whose research focuses on advancing clean water, clean energy, and environmental sustainability through molecular-level investigation of transport phenomena in soft and nanostructured materials. He employs molecular dynamics simulations, density functional theory, and multi-physics modeling to uncover the mechanisms governing ion separation, water purification, nanopore transport, and electrochemical processes. His work spans membrane desalination, reverse electrodialysis energy harvesting, heavy-metal removal, lithium-ion recovery, gas separation, and protein sequencing using solid-state nanopores. Shahbabaei has made significant contributions to understanding transport in graphene-based membranes, polymer-derived carbon membranes, covalent- and metal–organic framework membranes, and zwitterion-functionalized nanopores. His research bridges materials science, nanofluidics, biophysics, and computational chemistry to provide design principles for next-generation membranes and electrochemical systems. He has published extensively on aquaporin-inspired channels, ion selectivity in functionalized membranes, and confined fluid behavior in low-dimensional systems. His studies also explore self-healing polymer electrodes, COF/MOF hybrid architectures, and hydration-driven ion transport in graphene oxide nanochannels. Shahbabaei’s work combines theoretical modeling with experimental frameworks to enhance water and energy technologies. He has collaborated internationally on projects in wastewater purification, thin-film nanocomposite membranes, and battery material recovery. Supported by competitive research grants, he leads in computational approaches for sustainable membrane and energy design. His contributions provide fundamental insights into fluid transport, interfacial interactions, and multi-physics behavior in nanostructured materials. By integrating theory and simulation, his research guides the development of efficient, high-performance filtration and separation systems. His interdisciplinary approach addresses urgent environmental and health challenges. Through innovative computational strategies, Shahbabaei continues to influence the design of advanced materials for energy, water, and environmental applications. His work demonstrates a vision for sustainable technologies grounded in molecular-level understanding and predictive modeling.

Profiles: Scopus | Google Scholar

Featured Publication

Saedodin, S., & Shahbabaei, M. (2013). Thermal analysis of natural convection in porous fins with homotopy perturbation method (HPM). Arabian Journal for Science and Engineering, 38(8), 2227–2231.

Shahbabaei, M., & Kim, D. (2017). Molecular dynamics simulation of water transport mechanisms through nanoporous boron nitride and graphene multilayers. The Journal of Physical Chemistry B, 121(16), 4137–4144.

Shahbabaei, M., Tang, D., & Kim, D. (2017). Simulation insight into water transport mechanisms through multilayer graphene-based membrane. Computational Materials Science, 128, 87–97.

Shahbabaei, M., & Kim, D. (2017). Transport of water molecules through noncylindrical pores in multilayer nanoporous graphene. Physical Chemistry Chemical Physics, 19(31), 20749–20759.

Shahbabaei, M., & Kim, D. (2021). Advances in nanofluidics for water purification and filtration: Molecular dynamics (MD) perspective. Environmental Science: Nano, 8(8), 2120–2151.

Prof. Dr. Saeed Jafarirad | Biophysics | Best Researcher Award 

Prof. Dr. Saeed Jafarirad | Biophysics | Best Researcher Award 

Prof. Dr. Saeed Jafarirad | University of Tabriz | Iran

Dr. Saeed Jafarirad is a leading researcher in polymer chemistry, green nanotechnology, and biomaterials, recognized for his extensive contributions to biogenic nanostructures, eco-friendly nanoparticle synthesis, and advanced polymeric systems. His work integrates supramolecular chemistry, dendritic and polymeric architectures, cellulose-based and chitosan-based biopolymers, and innovative nano-drug delivery systems designed for therapeutic and theranostic applications. He has produced a large body of scientific output, including book chapters in major biomedical polymer encyclopedias, dozens of peer-reviewed journal articles, numerous conference presentations, national patents, and a wide range of scientific and industrial research projects. His recent publications highlight breakthroughs in slow-release nanofertilizers, phytochemical-mediated magnetic nanocomposites, and enhanced osteogenic and osteoconductive materials developed through green chemistry. His research also explores modulation of plant secondary metabolites using green-synthesized nanomaterials, as well as environmentally friendly fabrication of metal oxide nanostructures for biological and agricultural use. Throughout his career, he has advanced the design of sustainable nanomaterials, self-assembly systems, and carbosiloxane-based dendritic hybrids with applications in drug delivery and controlled release. His contributions have strengthened interdisciplinary links between polymer science, biotechnology, and environmental nanotechnology. He has been frequently recognized for research excellence through awards at institutional and regional levels. Through his innovative approaches and consistent scientific productivity, Dr. Jafarirad continues to play a significant role in shaping the future of green nanotechnology, functional polymers, and bio-based nanomaterial engineering.

Profile: Google Scholar

Featured Publications

Jafarirad, S., Mehrabi, M., Divband, B., & Kosari-Nasab, M. (2016). Biofabrication of zinc oxide nanoparticles using fruit extract of Rosa canina and their toxic potential against bacteria: A mechanistic approach. Materials Science and Engineering: C, 59, 296–302.

Ebadollahi, R., Jafarirad, S., Kosari-Nasab, M., & Mahjouri, S. (2019). Effect of explant source, perlite nanoparticles and TiO₂/perlite nanocomposites on phytochemical composition of metabolites in callus cultures of Hypericum perforatum. Scientific Reports, 9(1), 12998.

Namazi, H., & Jafarirad, S. (2011). Application of hybrid organic/inorganic dendritic ABA type triblock copolymers as new nanocarriers in drug delivery systems. International Journal of Polymeric Materials, 60(9), 603–619.

Gharehpapagh, A. C., Farahpour, M. R., & Jafarirad, S. (2021). The biological synthesis of gold/perlite nanocomposite using Urtica dioica extract and its chitosan-capped derivative for healing wounds infected with methicillin-resistant bacteria. International Journal of Biological Macromolecules, 183, 447–456.

Daghian, S. G., Farahpour, M. R., & Jafarirad, S. (2021). Biological fabrication and electrostatic attractions of new layered silver/talc nanocomposite using Lawsonia inermis L. and its chitosan-capped inorganic/organic hybrid. Materials Science and Engineering: C, 128, 112294.