Xi Yuan | Nanotechnology | Research Excellence Award

Prof. Xi Yuan | Nanotechnology | Research Excellence Award 

Jilin Normal University | China

Prof. Xi Yuan is a distinguished researcher and academician currently serving as a Professor at Jilin Normal University, China. He earned his Ph.D. from the University of Chinese Academy of Sciences, building upon a solid undergraduate foundation at Jilin University. Over the course of his academic career, Prof. Yuan has established himself as a leading expert in the field of luminescent nanomaterials, a rapidly advancing area at the intersection of materials science, nanotechnology, and photonics. His work has significantly contributed to the understanding and development of nano-luminescent materials, which have applications across energy, optoelectronics, sensing, and bioimaging technologies. Prof. Yuan has an impressive track record of research and scholarly output. He has published 39 high-impact articles in prestigious SCI-indexed journals, demonstrating his consistent contributions to the advancement of knowledge in his field. His research excellence is further evidenced by his role as the lead principal investigator on a grant awarded by the China National Natural Science Foundation (NSFC), highlighting his ability to secure competitive funding for cutting-edge projects. In addition to his academic publications, Prof. Yuan has been involved in consultancy and industry projects related to luminescent nanomaterials, bridging the gap between theoretical research and practical applications. Throughout his career, Prof. Yuan has actively participated in collaborations with other researchers and institutions, fostering interdisciplinary partnerships that enhance the scope and impact of his work. He maintains a strong professional presence through his editorial appointments and memberships in relevant scientific societies, reflecting his commitment to the broader research community. Prof. Yuan’s contributions have not only advanced fundamental research but have also provided valuable technological insights for industrial applications, making him a role model for emerging scientists in the field. He is recognized for his meticulous approach to research, innovative thinking, and dedication to mentoring the next generation of scientists. Prof. Yuan’s academic and professional achievements, combined with his extensive experience in luminescent nanomaterials, make him an outstanding candidate for the Research Excellence Award. Through his sustained contributions, he has significantly impacted both the scientific community and society by advancing knowledge, fostering innovation, and promoting the application of nanomaterials to real-world challenges. His work exemplifies the highest standards of scientific rigor, creativity, and societal relevance, positioning him as a leading figure in contemporary materials research.

Profile: Orcid

Featured Publications

Ji, S., Zhao, L., Chen, C., Zhao, J., Wang, J., Zheng, J., & Yuan, X. (2025, November). A/B-site synergistic engineering in nanoscale quasi-two-dimensional perovskites: Bimetallic Cs⁺/Cd²⁺ co-doping for enhanced luminescence and phase stability of BA₂MAn-1PbnBr3n+1 films. Journal of Alloys and Compounds. https://doi.org/10.1016/j.jallcom.2025.184887

Qian, Z., Wu, X., Xia, L., Wang, J., Zhao, J., & Yuan, X., Bao, X. (2025, November). Achieving long-lived multicolor room-temperature phosphorescence in silicon nanodots through Zn²⁺ doping for anti-counterfeiting and multiple-level information encryption. Journal of Luminescence. https://doi.org/10.1016/j.jlumin.2025.121678

Bao, X., Zhu, X., Tian, Z., Wang, H., Li, H., & Yuan, X. (2025, July). Dual-mode thermochromic afterglow in phosphorus-doped carbon dot composites for visible light-activated information encryption. Journal of Colloid and Interface Science. https://doi.org/10.1016/j.jcis.2025.137331

Zhao, K., Ji, S., Zhao, L., Qian, Z., Wu, X., Xia, L., Gao, Y., Zhao, J., & Yuan, X. (2025, July). Enhanced near-infrared emission and stability of Yb-doped CsPbCl₃ nanocrystals via amine ligand regulation for phosphor-converted light-emitting diodes. Journal of Alloys and Compounds. https://doi.org/10.1016/j.jallcom.2025.181832

Li, J., Xia, L., Liu, Y., Gu, Z., Liang, H., Wu, X., Qian, Z., Ji, S., Zhao, J., & Yuan, X. (2025, June). Optimizing luminescence performance of alloyed CsPb₁−xCdxBr₃ perovskite nanocrystals for blue light-emitting diodes. Materials Research Bulletin. https://doi.org/10.1016/j.materresbull.2025.113355

Zhu, X., Tian, Z., Wang, H., Wang, X., Zhang, Y., Wang, Y., Li, H., Bao, X., & Yuan, X. (2025, May 23). Visible light-activated dual-mode afterglow emission in chlorine-doped carbon dot-based composite for advanced information encryption. ACS Applied Nano Materials. https://doi.org/10.1021/acsanm.5c00279

Sumit Swain | Nanotechnology | Excellence in Research Award

Assist. Prof. Dr. Sumit Swain | Nanotechnology | Excellence in Research Award

Dayanandasagar College of Engineering | India

Dr. Sumit Swain is an emerging researcher in the field of Fractional-Order Circuits and Systems, with a specialized focus on modeling, design, experimentation, and implementation of fractional-order elements. His research spans across interdisciplinary areas including analog signal processing, bioimpedance analysis, wireless power transfer systems, biomedical instrumentation, and sensor design. He has been actively engaged in both theoretical and experimental studies on fractional inductors and capacitors, aiming to enhance the performance and efficiency of modern analog and mixed-signal systems. Dr. Swain earned his Doctor of Philosophy (Ph.D.) in 2025 from the School of Electronic Sciences, Odisha University of Technology and Research (OUTR), Bhubaneswar, India, under the guidance of Dr. Madhab Chandra Tripathy and Dr. Sribatsa Behera. His doctoral thesis, “Performance Improvement of Circuits and Systems Through Design and Analysis of Fractional-Order Elements,” presents innovative approaches to circuit optimization using fractional-order modeling principles. He also holds a Master of Technology (M.Tech.) in Electronics and Instrumentation Engineering from the same institution (2020), where his work on fractional-order filters and FOPID controllers laid the foundation for his subsequent research contributions. His Bachelor of Technology (B.Tech.) in Applied Electronics and Instrumentation was completed at C.V. Raman College of Engineering, Bhubaneswar, in 2018. With an impressive publication record of over 25 research papers, including 11 papers in SCIE and Scopus-indexed journals, 16 conference papers, and several manuscripts under review in reputed journals such as IEEE Transactions on Power Electronics and Circuits, Systems and Signal Processing, Dr. Swain has established himself as a dynamic researcher in electronic sciences. His works have collectively attracted 199 citations and an h-index of 10, reflecting his growing academic impact. His publications appear in high-quality international journals such as Computers in Biology and Medicine (Elsevier), Journal of Food Engineering (Elsevier), Nanoscale Advances (RSC), IETE Journal of Research (Taylor & Francis), Sādhanā (Springer), and AEU–International Journal of Electronics and Communications (Elsevier). His contributions include the realization of fractional-order inductors and capacitors, switched-capacitor-based filter designs, and fractional-order amplifiers, as well as innovative studies on bioimpedance modeling for analyzing the ripening and moisture content of fruits and vegetables. Dr. Swain’s excellence has been recognized with multiple honors, including the Young Scientist Award (2022) and the Best Researcher Award (2021) from the International Research Awards on Science, Health, and Engineering (“World Research Awards (WRA)”), alongside Best Paper Awards at several IEEE international conferences. He has also delivered. Dr. Sumit Swain’s research integrates fractional calculus, sensor technology, and circuit innovation to push the boundaries of analog and biomedical electronics. His consistent publication output, recognized academic contributions, and commitment to advancing sustainable and intelligent circuit systems mark him as one of the promising young researchers in the field of electronic sciences.

Profiles: Scopus | Orcid

Featured Publications

Swain, S., Tripathy, M. C., Bhuyan, K. C., & Behera, S. (2025). Wide-band fractional-order filter design using coaxial TEM fractional-inductor. Next Research, 2(2), 100395.

Swain, S., Swain, S., Panda, B., & Tripathy, M. C. (2025). Modeling and optimal analysis of lung cancer cell growth and apoptosis with fractional-order dynamics. Computers in Biology and Medicine, 188, 109837.

Nayak, B., Swain, S., & Tripathy, M. C. (2025). Fractional order bioimpedance modeling for sensing fruit properties. Journal of Food Engineering, 397, 112594. https://doi.org/10.1016/j.jfoodeng.2025.112594

Swain, S., Tripathy, M. C., Behera, S., & Dastidar, A. (2025). Experimental analysis of ripening stages and moisture content of lemon using fractional-order bio-impedance modelling. IETE Journal of Research.

Sahoo, A., Acharya, A., Jena, P., Moonis, M., Biswal, J. P., Swain, S., & Tripathy, M. C. (2025). Zirconium ferrite nanoparticles as smart materials for energy and environmental applications: Fractional-order supercapacitors, reservoirs of F− ions, and efficient electrocatalysts for water splitting. Nanoscale Advances, 7(1), 1–12.

Swain, S., Tripathy, M. C., Sahoo, A., Acharya, A. N., & Behera, S. (2024). Implementation of a fractional-inductor (α < 0.5) and its performance study in a high-frequency LαR integrator circuit. AEU–International Journal of Electronics and Communications, 167, 155114.

Swain, S., Dash, S., & Tripathy, M. C. (2024). FOPID-based feed-forward temperature control of a 100°C thermal reservoir. In Proceedings of the 1st International Conference on Software, Systems and Information Technology (SSITCON 2024) (pp. 1–5).

Swain, S., Swami, S. D., Tripathy, M. C., & Behera, S. (2024). Performance exploration and tunability of a high-frequency fractional-order clock oscillator. In Proceedings of the IEEE International Conference on Smart Power Control and Renewable Energy (ICSPCRE 2024) (pp. 1–6).

Doudou Zhang | Materials Science | Best Researcher Award

Dr. Doudou Zhang | Materials Science | Best Researcher Award 

Macquarie University | Australia

Dr. Doudou Zhang is a distinguished Macquarie University Research Fellow (Vice-Chancellor Fellow) and lecturer in the School of Engineering, renowned for her pioneering contributions to functional materials and photoelectrochemical (PEC) energy systems. Her research focuses on the development of advanced materials and device architectures for solar-to-hydrogen conversion, CO₂ reduction, and sustainable ammonia synthesis, integrating materials design, device engineering, and artificial intelligence (AI)-driven approaches to accelerate innovation in renewable energy technologies. Dr. Zhang received her Ph.D. in Chemistry from Shaanxi Normal University, followed by a prestigious postdoctoral research fellowship at the Australian National University (ANU) from 2019 to 2024, where she specialized in photo(electro)catalysis for sustainable hydrogen production. At Macquarie University, she leads several cutting-edge research projects as both sole and co-chief investigator, including the ARENA project (KC012) on accelerating the commercialization of direct solar-to-hydrogen technology (A$2.25M; A$163K at MQ), an ARC Discovery Project (DP250104928) on zero-gap photoelectrochemical ammonia synthesis (A$580K), and the Macquarie University Research Fellowship project on the direct synthesis of earth-abundant bifunctional catalysts (A$848K). Her research portfolio demonstrates a remarkable ability to attract competitive national and industry funding, exceeding A$10 million in cumulative project value through collaborations with industry leaders such as Fortescue Future Industries (FFI). Her earlier work as a main investigator contributed to multiple high-impact projects, including ARENA and FFI-funded initiatives focused on developing low-cost perovskite/silicon semiconductors and macroelectrode electrolysis systems, each driving substantial advances in low-cost green hydrogen production. Beyond academic research, Dr. Zhang has actively engaged with industry, leading consultancy projects like the AEA Ignite initiative (A$489K) for developing durable roll-to-roll functional coatings for next-generation energy devices. Dr. Zhang has achieved an H-index of 21 and over 1,970 citations (Google Scholar, October 2025), reflecting the global influence of her research in energy materials. She has authored 38 peer-reviewed journal papers, 1 book chapter, and 12 granted patents (including one patent that attracted A$833K industrial funding). Her publications are consistently featured in top-tier journals such as Energy & Environmental Science, Advanced Energy Materials, Applied Physics Reviews, Chemical Engineering Journal, Materials Today Energy, Angewandte Chemie International Edition, and Progress in Materials Science. Notably, over 31% of her works rank within the top 10% citation percentiles, and 76% are among the top 25% most cited papers globally. Her contributions also extend to scholarly authorship and thought leadership, including an invited chapter titled “Advances in Perovskite-Based Photocatalysts: Materials Design, Mechanisms, and Applications” in Semiconductors and Semimetals (Elsevier, 2025). Dr. Zhang’s recent works demonstrate the integration of AI and machine learning in catalyst discovery, as seen in her publication “Prospects of AI in Advancing Green Hydrogen Production”.

Profiles: Scopus | Orcid | Google Scholar

Featured Publications

Zhang, D., & Co-authors. (2025, September 25). Minimizing buried interface energy losses via urea phosphate derivatives enable high-efficiency carbon-based mesoscopic perovskite solar cells. Small. https://doi.org/10.1002/smll.202507384

Zhang, D., Pan, W., Lu, H., Wang, Z., Gupta, B., Oo, A. T., Wang, L., Reuter, K., Li, H., Jiang, Y., & Karuturi, S. (2025, September 1). Prospects of AI in advancing green hydrogen production: From materials to applications. Applied Physics Reviews, 12(3), 031335. https://doi.org/10.1063/5.0281416

Attar, F., Riaz, A., Zhang, D., Lu, H., Thomsen, L., & Karuturi, S. (2025, August 15). Advanced NiMoC electrocatalysts precisely synthesized at room temperature for efficient hydrogen evolution across pH ranges. Chemical Engineering Journal, 518, 164494. https://doi.org/10.1016/j.cej.2025.164494

Zhang, D., Pan, W. S., Sharma, A., Shen, H., Lem, O., Saraswathyvilasam, A., Yang, C., Weber, K., Wu, Y., Catchpole, K., Oo, A. T., & Karuturi, S. (2025, March). Over 14% unassisted water splitting driven by immersed perovskite/Si tandem photoanode with Ni-based catalysts. Materials Today Energy, 48, 101809. https://doi.org/10.1016/j.mtener.2025.101809

Wang, P., Oo, A. T., Chen, L., & Zhang, D. (2025). Recent advances of interfacial modification over tantalum nitride photoanodes for solar water oxidation: A mini review. Frontiers in Chemistry, 13, 1600959. https://doi.org/10.3389/fchem.2025.1600959

Zhang, D., Pan, W., Jiang, Y., & Co-authors. (2024, December 28). Defect management and crystallization regulation for high-efficiency carbon-based printable mesoscopic perovskite solar cells via a single organic small molecule. Journal of Materials Chemistry A. https://doi.org/10.1039/d4ta06877g

Ding, J., Zhang, D., Riaz, A., Gu, H., Soo, J. Z., Narangari, P. R., Jagadish, C., Tan, H. H., & Karuturi, S. (2024, November). Scalable amorphous NiFe(OH)x/Fe/graphene bifunctional electrocatalyst via solution-corrosion for water splitting. CCS Chemistry, 6, 2692–2703. https://doi.org/10.31635/ccschem.024.202404423

Zhang, D., & Co-authors. (2024, July 5). Solar-driven ammonia synthesis with Co–TiOx and Ag nanowires enhanced Cu₂ZnSnS₄ photocathodes. Applied Catalysis B: Environmental, 348, 123836. https://doi.org/10.1016/j.apcatb.2024.123836

Farnoush Faridbod | Nanotechnology | Best Researcher Award

Assoc Prof Dr. Farnoush Faridbod | Nanotechnology | Best Researcher Award

Associate Professor at University of Tehran, Iran.

Farnoush Faridbod, Ph.D., is an accomplished figure in analytical chemistry, currently serving as an Associate Professor at the School of Chemistry, University of Tehran. Her research is focused on pioneering electrochemical and optical sensors, biosensors, and medical diagnostic tools utilizing advanced nanomaterials. With a robust academic background, including a Ph.D. from the University of Tehran and specialized training at the Max-Planck Institute in Germany, she has authored around 300 papers in esteemed journals and contributed to approximately 13 international books and book chapters. Recognized as a Highly Cited Researcher (HCR) in Chemistry by Thomson Reuters (ESI) in 2014, she continues to influence the field through her editorial leadership as the Managing Editor of Analytical and Bioanalytical Electrochemistry and her role as a reviewer and editorial board member for various international journals. Her career is marked by numerous accolades, including being selected as a distinguished researcher and professor at national research festivals.

Professional Profiles:

🎓 Education

  • Ph.D. in Analytical Chemistry, University of Tehran, 2009
  • Training on gene to protein (Purification-Electrophorese-Fluorescence Molecular Spectroscopy) at Max-Planck Institute, Germany

👩‍🏫 Professional Experience

  • Associate Professor of Analytical Chemistry, School of Chemistry, College of Science, University of Tehran

🔬 Research Focus

  • Designing new electrochemical and optical sensors, biosensors, clinical rapid tests, and medical diagnostic kits using nanomaterials

📄 Publications and Impact

  • Published approximately 300 papers in prestigious journals
  • H-index of 60
  • Author of about 13 international books/book chapters

🏆 Awards and Recognition

  • Selected as a distinguished researcher and professor at national research festivals
  • Recognized as a Highly Cited Researcher (HCR) in Chemistry by Thomson Reuters (ESI) in 2014

📝 Editorial Roles:

  • Managing Editor of Analytical and Bioanalytical Electrochemistry since 2009
  • Reviewer and editorial board member for numerous international journals

Publications

  1. Early fetal sex determination using a fluorescent DNA nanosensing platform capable of simultaneous detection of SRY and DYS14 sequences in cell-free fetal DNA
    • Authors: S. Mohebbi, S. Zoughi, F. Faridbod, S. Moradi
    • Year: 2024
  2. Selective and Rapid Optical Detection of Citalopram Using a Fluorescent Probe Based on Carbon Quantum Dots Embedded in Silica Molecularly Imprinted Polymer
    • Authors: A. Amiri, F. Faridbod, S. Zoughi
    • Year: 2024
  3. Synthesis of polymer dots as fluorescent nanoprobe for the detection of Ponceau 4R, an additive color abuse in food
    • Authors: V. Sedighi, F. Faridbod
    • Journal: Food Chemistry
    • Year: 2024
    • Citations: 1
  4. Methamphetamine determination using label-free impedimetric aptasensor based on ceria nanocomposite
    • Authors: L. Anvari, S.M. Ghoreishi, K. Khoshnevisan, M.R. Ganjali, F. Faridbod
    • Journal: Journal of Applied Electrochemistry
    • Year: 2023
    • Citations: 1
  5. Simple detection of gluten in wheat-containing food samples of celiac diets with a novel fluorescent nanosensor made of folic acid-based carbon dots through molecularly imprinted technique
    • Authors: S. Karamdoust, M.-R. Milani-Hosseini, F. Faridbod
    • Journal: Food Chemistry
    • Year: 2023
    • Citations: 13
  6. Lanthanum Cerium Ferrite Nanoparticles for Enhancing Voltammetric Response of a Carbon Paste Electrode to Opioid Methadone
    • Authors: A. Shafaat, A. Pazoki, F. Faridbod
    • Journal: Analytical and Bioanalytical Electrochemistry
    • Year: 2023
    • Citations: 1
  7. Sensitive detection of H2O2 released from cancer cells with electrochemiluminescence sensor based on electrochemically prepared polypyrrole@Ce: Dy tungstate/polyluminol
    • Authors: E. Sobhanie, M. Hosseini, F. Faridbod, M.R. Ganjali
    • Journal: Journal of Electroanalytical Chemistry
    • Year: 2023
    • Citations: 4
  8. Carbendazim trace analysis in different samples by using nanostructured modified carbon paste electrode as voltametric sensor
    • Authors: A. Kasaeinasab, H.A. Mahabadi, S.J. Shahtaheri, F. Mesgari, F. Faridbod
    • Journal: PLoS ONE
    • Year: 2023
    • Citations: 10
  9. Earlier Detection of Alzheimer’s Disease Based on a Novel Biomarker cis P-tau by a Label-Free Electrochemical Immunosensor
    • Authors: A. Shiravandi, F. Yari, N. Tofigh, F. Shekari, F. Faridbod
    • Journal: Biosensors
    • Year: 2022
    • Citations: 9
  10. A Novel Electrochemical Aptasensor Based on a New Platform of Samarium Molybdate Flower-like Nanoparticles@Poly(pyrrole) for Non-Invasive Determination of Saliva CORTISOL
    • Authors: Z. Rezapoor-Fashtali, M.R. Ganjali, F. Faridbod
    • Journal: Biosensors
    • Year: 2022
    • Citations: 8