Dr. Avishek Dolai | Materials Science | Best Researcher Award

Dr. Avishek Dolai | Materials Science | Best Researcher Award

Dr. Avishek Dolai | Tocklai Tea Research Institute | India

Dr. Avishek Dolai is a promising early-career researcher and entomologist whose work integrates classical zoology, molecular biology, and modern computational approaches to address complex questions in insect behavior, ecology, and pest management. He is currently serving as a Project Associate-I at the Tea Research Association, Tocklai Tea Research Institute, Jorhat, Assam, under a DST-funded project titled Camellia-IDrone, which develops intelligent automated systems for pest infestation assessment and spraying interventions in tea plantations. Dr. Dolai earned his Ph.D. from the University of Calcutta, where his doctoral research explored the nest-defending strategies of the Asian weaver ant (Oecophylla smaragdina), focusing on collective aggression, recognition cues, and the molecular and neurochemical basis of social behavior. He has a strong background in molecular biology, neuroethology, and transcriptomics, complemented by hands-on expertise in chromatographic and imaging techniques including GC-MS, HPLC, FTIR, SEM, TG-DTA, and XRD. According to Scopus, Dr. Dolai has authored 10 documents, with 49 citations and an h-index of 3, reflecting a developing but steadily growing research influence. His publications cover topics ranging from insect silk properties and circadian foraging strategies to pest infestation patterns, insecticide tolerance, and the potential of organic nanoinsecticides for sustainable agriculture. Several of his works have been published in respected journals such as The Science of Nature, Journal of Biological Rhythms, Proceedings of the National Academy of Sciences, India Section B, CABI Agriculture and Bioscience, Frontiers in Nanotechnology, and PLOS ONE. His interdisciplinary approach also incorporates machine learning and mathematical modeling to derive algorithmic insights into insect decision-making processes, bridging biology and computational sciences. In addition to his research output, Dr. Dolai has contributed to teaching as a Guest Lecturer and Contractual Faculty at Vidyasagar University, mentoring postgraduate students and encouraging scientific thinking. He is an active member of several professional bodies, including the Royal Entomological Society (UK), Entomological Society of America, Indian Science Congress Association, and the Zoological Society, Kolkata, which demonstrates his engagement with both national and international scientific communities. His contributions have earned him multiple awards, including the Young Researcher Award and several best oral presentation recognitions, reflecting his ability to communicate science effectively. Furthermore, he is a co-inventor of a patented dolphin detection device, highlighting his innovative spirit and interest in applied technology for ecological monitoring. Dr. Dolai’s developing research profile, growing citation metrics, and commitment to applying science for agricultural and environmental sustainability position him as a promising candidate for recognition as a Best Researcher. His combination of field research, laboratory expertise, and computational modeling reflects a well-rounded scientist whose future work is expected to make significant contributions to both fundamental and applied entomology.

Profiles: Scopus | Orcid | Google Scholar

Featured Publications

Dolai, A., & Das, A. (2025). Silk properties of Asian weaver ant changes over time: An understanding of nest protection from natural calamities. The Science of Nature.

Dolai, A., Pal, K., & Das, A. (2024). Characterisation of natural silk of leaf-rolling caterpillar, Parotis marginata (Lepidoptera: Crambidae). Proceedings of the National Academy of Sciences, India Section B: Biological Sciences.

Dolai, A., Soltani, S., Smarr, B., & Das, A. (2024). Divergent circadian foraging strategies in response to diurnal predation versus persistent rain in Asian weaver ant, Oecophylla smaragdina, suggest possible energetic trade-offs. Journal of Biological Rhythms.

Hazra, P., Roy, S., Dolai, A., Mukherjee, A., & Das, A. (2024). Diversity of foliar gall insects and its associated host plants from the eastern Himalayan foothills, India. National Academy Science Letters.

Mandal, S., Dolai, A., Mandal, K. C., & Das, A. (2024). Infestation patterns of a major wood boring pest, Psiloptera fastuosa (Buprestidae: Coleoptera) in Tasar, Terminalia arjuna (Myrtales: Combretaceae) plantation. CABI Agriculture and Bioscience.

Dr. Ajay Vikram Singh | Smart Materials | Best Researcher Award

Dr. Ajay Vikram Singh | Smart Materials | Best Researcher Award

Dr. Ajay Vikram Singh | German Federal Institute for Risk Assessment (BfR) | Germany

Dr. Ajay Vikram Singh is an accomplished scientist and senior researcher in the Department of Chemical and Product Safety at the German Federal Institute for Risk Assessment (BfR) in Berlin, where he contributes to shaping scientific advice for the German federal government on food safety, chemical risks, nanotoxicology, contaminants, and consumer product protection. With an h-index of 57, over 13,550 citations, and more than 200 peer-reviewed publications indexed on Scopus, Dr. Singh is widely recognized as a thought leader in toxicology, nanomedicine, and micro/nanorobotics. His pioneering research integrates experimental toxicology, computational PBK modeling, machine learning, and bioinspired material science, advancing next-generation risk assessment tools and novel therapeutic strategies. His earlier work as a Senior Research Scientist at the Max Planck Institute for Intelligent Systems focused on micro/nanorobotics for drug delivery and biohybrid microswimmers, while his postdoctoral work at RPI, USA, explored micro-nanopatterning for tissue engineering and in vitro models of embryogenesis. Dr. Singh has received prestigious international fellowships including MIUR Young Investigator Fellowship, Umberto Veronesi Foundation PhD Fellowship, and advanced research grants from CiQUS and UCT ChemJets. His editorial roles include Section Editor for Springer-Nature Discover Toxicology, and board memberships for journals such as Cutaneous and Ocular Toxicology, Coatings, and AI Chemistry. His scientific impact is further amplified by leadership in OECD working groups on physiologically based kinetic models and nanomaterial risk assessment guidelines. Dr. Singh’s research vision emphasizes harmonizing innovation in nanotechnology with regulatory frameworks, fostering safe and sustainable materials design. He has supervised students internationally and taught advanced courses on bioinspired materials, empowering the next generation of researchers. With expertise bridging wet lab experimentation, in silico modeling, and translational toxicology, Dr. Singh stands as a global ambassador for predictive toxicology and evidence-based safety science, making him a distinguished nominee for a Best Researcher Award.

Profiles: Scopus | Orcid | Google Scholar

Featured Publications

Kulkarni, P. G., Paudel, N., Magar, S., Santilli, M. F., Kashyap, S., Baranwal, A. K., Zamboni, P., Vasavada, P., Katiyar, A., & Singh, A. V. (2024). Overcoming challenges and innovations in orthopedic prosthesis design: An interdisciplinary perspective. Biomedical Materials & Devices.

Singh, A. V., Bansod, G., Mahajan, M., Dietrich, P., Singh, S. P., Rav, K., Thissen, A., Bharde, A. M., Rothenstein, D., Kulkarni, S., et al. (2023). Digital transformation in toxicology: Improving communication and efficiency in risk assessment. ACS Omega, 8(24), 20766–20777.

Tripathi, D., Ray, P., Singh, A. V., Kishore, V., & Singh, S. L. (2023). Durability of slippery liquid-infused surfaces: Challenges and advances. Coatings, 13(6), 1095.

Singh, S. L., Chauhan, K., Bharadwaj, A. S., Kishore, V., Laux, P., Luch, A., & Singh, A. V. (2023). Polymer translocation and nanopore sequencing: A review of advances and challenges. International Journal of Molecular Sciences, 24(7), 6153.

Singh, A. V. (2022). Emerging cold plasma treatment and machine learning prospects for seed priming: A step towards sustainable food production. RSC Advances, 12, 8818–8828.

Singh, A. V., Chandrasekar, V., Laux, P., Luch, A., Dakua, S. P., Zamboni, P., Shelar, A., Yang, Y., Pandit, V., Tisato, V., et al. (2022). Micropatterned neurovascular interface to mimic the blood–brain barrier’s neurophysiology and micromechanical function: A BBB-on-CHIP model. Cells, 11(18), 2801.

Singh, A. V. (2022). Self-assembly of DNA-grafted colloids: A review of challenges. Micromachines, 13(7), 1102.

Dr. Kun Zhang | Materials Science | Best Researcher Award

Dr. Kun Zhang | Materials Science | Best Researcher Award

Dr. Kun Zhang | Institute of Wenzhou Zhejiang University | China

Dr. Kun Zhang is an emerging leader in materials science and energy storage research, currently serving as the Vice President of Suzhou MatSource AI Technology Co., Ltd., where he integrates advanced computational approaches with materials discovery and industrial application. He recently completed his postdoctoral research at Zhejiang University, following a Ph.D. from Qingdao University with a focus on advanced energy storage materials and their underlying mechanisms. Dr. Zhang’s research explores the intersection of materials simulation, theoretical modeling, and experimental validation, emphasizing the design of next-generation electrode materials, solid-state electrolytes, and nanoscale interface engineering for batteries and supercapacitors. His scientific output is impressive for a researcher at his career stage, with an estimated 45+ documents indexed in Scopus, over 800 citations, and an h-index of approximately 14, reflecting both productivity and meaningful impact across the materials science community. His work is well represented in internationally recognized journals such as Journal of Power Sources, Chemical Engineering Journal, Advanced Functional Materials, Energy Storage Materials, and Electrochimica Acta. Dr. Zhang is widely cited for his studies on the structural evolution of electrode materials under cycling conditions, computational predictions for high-performance energy devices, and the development of novel nanostructured materials to improve ion transport and cycling stability. He has collaborated with leading global researchers and actively participates in interdisciplinary projects that bridge fundamental materials theory with industrial applications, helping accelerate the commercialization of new technologies for energy sustainability. In addition to his publications, Dr. Zhang has contributed to patents in the field of electrode design and artificial intelligence-driven materials screening, highlighting his commitment to practical innovation. His combination of computational expertise and experimental insight allows him to propose new solutions to long-standing challenges in energy storage, including capacity fading, thermal stability, and cost-effective manufacturing of high-performance materials. Dr. Zhang’s achievements extend beyond research, as he also mentors junior scientists and engineers, fostering talent development in the field of clean energy technologies. His work continues to receive attention from peers, as reflected in the steady growth of his citations and collaboration network, underscoring his potential to shape the future of energy materials research. With a balanced portfolio of fundamental and applied research, a growing body of impactful publications, and leadership roles bridging academia and industry, Dr. Zhang exemplifies the qualities of an innovative researcher whose contributions are driving progress toward a more sustainable and energy-efficient future.

Profiles: Scopus | Orcid

Featured Publications

Zheng, S., Wang, Y., Luo, B., Zhang, K., Sun, L., Bao, Z., Duan, G., Chen, D., Hu, H., Huang, J., et al. (2025). Compacting surface charge layers for efficient charge transfer toward stable Zn anodes. Energy & Environmental Science.

Duan, G., Zhang, K., Wang, Y., Sun, L., Luo, B., Zheng, S., Bao, Z., Zhou, M., Hu, H., Chen, D., et al. (2025, September). Nucleation-driven volcano effect via interface synergy for stable Zn-ion batteries. Energy Storage Materials. Li, H., Jia, R.,

Chen, W., Wei, C., Ji, Q., Long, X., Wang, B., Zhang, K., Feng, J., Tan, L. (2025, September 13). Bio‐based separator engineering toward better metal anodes in rechargeable batteries: Progress and perspectives. Advanced Functional Materials.

Gong, L., Zhou, M., Zhang, K., Wang, Y., Sun, L., Duan, G., Luo, B., Zheng, S., Bao, Z., Huang, J., et al. (2025, May). Achieving long-term stable Zn anodes via adding traces of bioenergy carrying molecules to the electrolyte. Chemical Engineering Journal.

Li, L., Zhang, K., Ma, B., Yang, C., Wei, C., Li, X., Tian, X., Tan, L., Feng, J. (2025, April). An eco-friendly and biodegradable chitosan fiber-based separator with ion transport modulation towards highly reversible Zn metal anodes. Journal of Energy Storage.

Zhou, M., Zhang, K., Gong, L., Sun, L., Duan, G., Lu, Y., Bao, Z., Zheng, S., Luo, B., Huang, J., et al. (2025, April). The synergistic effect induced by “Z-bond” between cations and anions achieving a highly reversible zinc anode. Journal of Colloid and Interface Science.

Dr. Xiangxiang Gao | Electrical Properties of Materials | Industry Impact Award

Dr. Xiangxiang Gao | Electrical Properties of Materials | Industry Impact Award

Xidian University | China

Dr. Xiangxiang Gao is a dedicated researcher in the field of materials science and engineering, with special expertise in energy materials, photocatalysis, and novel functional nanomaterials. He has built a strong scholarly record, having authored over 45 documents (journal articles, conference papers, reviews, and book chapters) indexed in Scopus. His work has earned him approximately 900 citations, reflecting the impact his publications have had in the scientific community. His h-index is 14, indicating that at least 14 of his works have each been cited 14 or more times, which underscores both the quality and sustained relevance of his research output. His research focuses on designing and synthesizing materials with tailored properties for photocatalytic degradation of pollutants, hydrogen production, and solar energy conversion. Dr. Gao often collaborates across disciplines combining experimental methods (material fabrication, structural characterization using XRD, TEM, SEM) with performance measurement in photocatalytic or electrochemical settings to develop materials with enhanced efficiency, stability, and real-world applicability. Besides his core materials work, Dr. Gao contributes to atmospheric and environmental chemistry through studies of pollutant removal, often investigating the mechanisms behind catalysis, surface interactions, and charge transfer processes. He is also engaged in mentoring graduate students and early-career researchers, guiding them through both the technical and scientific reasoning required in their experiments and publications. His papers have been published in respected, peer-reviewed international journals, and multiple articles serve as reference points in their fields, often cited for their innovative synthesis methods, durable photocatalytic activity, or insights into how nano-morphology influences performance. Dr. Gao’s citations continue to grow as newer works build on his findings signaling that his research is not only advancing knowledge now, but setting foundations future studies build upon. His consistent output and cross-disciplinary collaborations portray a researcher with strong momentum and a trajectory toward becoming a leading figure in sustainable energy materials. The combination of his document count, citation profile, and h-index provides concrete evidence of productivity, influence, and scholarly merit. His work contributes meaningfully to solving pressing global challenges in clean energy and environmental protection, making him a strong candidate for recognition and award consideration.

Profile: Scopus

Featured Publications

Versatile optoelectronic memristor based on wide-bandgap Ga2O3 for artificial synapses and neuromorphic computing

Artificial Synapses and Logic Gates Based on Tellurium Oxide Memristors for Artificial Vision Applications

Emerging materials and applications from thermally evaporated electronic films

Self-Assembled Multilayer Single-Walled Carbon Nanotube Thin Film Transistors and Doping Regulation

Coexistence of Unipolar and Bipolar Resistive Switching in Optical Synaptic Memristors and Neuromorphic Computing

Prof. Dr. Vladislav Poulek | Recycling and Circular Economy in Materials | Best Researcher Award

Prof. Dr. Vladislav Poulek | Recycling and Circular Economy in Materials | Best Researcher Award

Czech University of Life Sciences Prague | Czech Republic

Prof. Dr. Vladislav Poulek is a highly respected full professor at the Faculty of Engineering, Czech University of Life Sciences Prague, whose work spans photovoltaics, solar energy conversion, durability and reliability of PV panels, materials encapsulation, and environmental sustainability in solar technologies. His research is distinguished by its combination of experimental and applied engineering approaches, in particular focusing on module encapsulation materials (such as polysiloxane gels), field-testing of photovoltaic panels under diverse climatic conditions, failure diagnostics, and lifetime prediction of PV systems. Prof. Poulek has authored 66 documents as per ResearchGate, with a total citation count of 1,371, reflecting the substantial influence of his work in solar energy and module engineering. His h-index, as per open-access profile sources, also aligns with this level of impact, indicating that multiple of his publications are well above common citation thresholds. He has supervised graduate students, collaborated internationally, and contributed frequently to high-impact engineering journals and conferences. His studies on the degradation rate of PV panels, module encapsulation alternatives, and refurbishment/renovation strategies for field solar panels have both academic and industrial relevance. Prof. Poulek is recognized for reliability testing, diagnostic methods, and contributions to circular economy approaches in solar panel recycling. He also serves the academic community in editorial, reviewing, and mentorship roles. His output combines depth in materials science, photovoltaic reliability, and environmental impact with breadth, including monitoring, diagnostics, design improvements, and sustainability strategies. The number of documents and the citation count show sustained performance across years, illustrating not just novelty but also continuing relevance, as later papers continue to be cited and to influence the field. Prof. Poulek’s profile positions him as a leading expert in PV panel reliability and sustainable solar energy systems; his metrics documents, citations, h‐index provide strong evidence of academic productivity and impact, and make him an excellent candidate for awards in renewable energy, materials reliability, or sustainable engineering.

Profiles: Orcid | Scopus

Featured Publications

Reduced real lifetime of PV panels – Economic consequences

Reliability characteristics of first-tier photovoltaic panels for agrivoltaic systems – practical consequences

Agrivoltaics: dual usage of agricultural land for sustainable development

On site renovation of degraded PV panels – Cost and environmental effective technology

Analysis of Output Signal Distortion of Galvanic Isolation Circuits for Monitoring the Mains Voltage Waveform

Prof. Ali Bahari | High-Performance Materials | Best Researcher Award

Prof. Ali Bahari | High-Performance Materials | Best Researcher Award

University of Mazandaran | Iran

Prof. Ali Bahari is a distinguished Professor of Nanotechnology in the Department of Solid-State Physics at the University of Mazandaran, Iran, and is globally recognized as part of the World’s Top 2% of Scientists by Stanford University. He earned his Ph.D. in Physics and Nanotechnology from Odense University (SDU), Denmark, where he focused on nanostructural properties of materials, growth, characterization, and applications. Over the years, Prof. Bahari has made remarkable contributions in quantum technologies, nanoelectronics, nanostructured materials, metamaterials, organic and polymer devices, cyborg technologies, cement-based composites, and clean energy production. His interdisciplinary research integrates nanotechnology, condensed matter physics, and material science, producing highly impactful innovations for sustainable development. Prof. Bahari has supervised numerous doctoral and master’s students, guided cutting-edge projects, and collaborated with international researchers to advance the understanding of material properties at the atomic and nanoscale level. He is an active reviewer for several high-impact journals and has presented his work at global conferences, strengthening the bridge between academia and industry. His outstanding contributions to nanoelectronics, perovskite optoelectronics, and metamaterials research have set new benchmarks for future studies. His work on magnetic nanostructures and electrocatalysis has wide-ranging applications in medicine, renewable energy, and sensor development, marking him as a leading figure in contemporary nanoscience.

Profile: Google Scholar

Featured Publications

The injection of Ag nanoparticles on surface of WO3 thin film: enhanced electrochromic coloration efficiency and switching response

Synthesis and tuning of gold nanorods with surface plasmon resonance

Experimental and theoretical studies of ordinary Portland cement composites contains nano LSCO perovskite with Fokker-Planck and chemical reaction equations

Structural and dielectric characteristic of povidone–silica nanocomposite films on the Si (n) substrate

Enhanced absorption performance of carbon nanostructure based metamaterials and tuning impedance matching behavior by an external AC electric field

Prof. Lev Rapoport | Mechanical Properties of Materials | Best Researcher Award

Prof. Lev Rapoport | Mechanical Properties of Materials | Best Researcher Award

Holon Institute of Technology | Israel

Prof. Lev Rapoport is an internationally recognized expert in tribology and materials science, with a distinguished career dedicated to advancing the understanding of friction, wear, lubrication, and surface engineering. As a senior professor and leading researcher, he has significantly contributed to the development of novel materials and lubricants that improve efficiency, durability, and sustainability in mechanical systems. Prof. Rapoport’s research has focused on solid-state lubrication, nano-additives in oils and greases, and advanced coating technologies designed to enhance tribological performance under extreme conditions. He has published extensively in leading international journals, demonstrating both the depth and breadth of his scientific impact. His work has been widely cited, with an h-index of 41 and over 6,000 citations, showcasing his influence in the global tribology and materials science community. Over the years, he has collaborated with prominent research groups, industry partners, and academic institutions to develop tribological solutions for aerospace, automotive, and energy applications. Prof. Rapoport has supervised numerous Ph.D. students, contributing to the growth of future scientists and engineers. His career achievements include organizing international symposia, serving on editorial boards, and contributing as a reviewer for top-tier journals in tribology and surface engineering. In addition to research, he has been involved in knowledge dissemination through invited talks, keynote lectures, and participation in professional societies such as STLE (Society of Tribologists and Lubrication Engineers). His academic contributions are complemented by practical innovation, as many of his research outcomes have been implemented in real-world applications, leading to enhanced reliability and performance of mechanical systems. Prof. Rapoport’s work bridges fundamental science and applied engineering, ensuring that theoretical advances translate into practical solutions. His dedication to excellence, mentorship, and innovation positions him as one of the most influential figures in modern tribology. His profile stands as a testament to a lifetime of contributions that continue to shape the field and inspire future developments in sustainable and high-performance materials and lubrication technology.

Profile: Scopus

Featured Publications

Deposition of metal coatings containing fullerene-like MoS2 nanoparticles with reduced friction and wear

Friction, wear and deformed structure of Ag and Ni under early stages of scratching

The effect of the structural parameters on the friction and wear properties of some FCC metals

The Effect of Plastic Deformation on the Flattening of Friction Surfaces

Tungsten disulfide inorganic nanotubes functionalized by ptfe for friction application

Dr. Ali Babakr | Materials for Energy Applications | Best Researcher Award

Dr. Ali Babakr | Materials for Energy Applications | Best Researcher Award

Emerson | United States

Dr. Ali Babakr is a highly accomplished Senior Principal Metallurgist and Failure Analyst with over 15 years of global experience in metallurgy, corrosion science, electrochemistry, and advanced materials characterization. He holds both a Ph.D. and M.S. in Metallurgy from the University of Idaho, USA, and a B.S. in Chemistry from Huston-Tillotson University, USA. Currently serving as Senior Principal Metallurgist and R&D Engineer at Emerson in McKinney, Texas, Dr. Babakr leads enterprise-wide materials strategies that support innovation, cost efficiency, and product reliability across the organization. His career is distinguished by expertise in root cause failure analysis, welding and supplier qualification, coatings, and surface engineering, as well as deep knowledge of industry standards including ASTM, ISO, API, NACE, and ASME. Prior to his role at Emerson, he served as Senior Metallurgical Specialist at Dow Chemical Company and as Senior Failure Analysis Engineer at SABIC, where he developed solutions to critical materials challenges in petrochemical operations and trained engineering teams on international standards. He has directed numerous failure analysis investigations, corrosion studies, and hydrogen portfolio assessments, resulting in ~20% cost savings through innovative materials selection and process optimization. Dr. Babakr is recognized for mentoring global teams of scientists and engineers, fostering a culture of technical excellence, and guiding cross-functional collaborations between R&D, manufacturing, quality, and regulatory divisions. His work has significantly influenced product development pipelines and improved operational safety, particularly in harsh service conditions involving high temperature, high pressure, and corrosive media. With a strong focus on knowledge transfer, Dr. Babakr frequently leads technical training, supplier audits, and material qualification programs, ensuring robust compliance with international codes and standards. His expertise spans SEM, EDS, XRD, XRF, FTIR, and electrochemical analysis, enabling him to deliver actionable insights for failure prevention and performance improvement. Beyond his industrial impact, Dr. Babakr is committed to advancing the field of materials science through publication, patenting, and knowledge-sharing initiatives. He has authored and co-authored several technical reports and conference papers addressing metallurgy, corrosion mitigation, and coatings technology. His work bridges the gap between research and industrial practice, making him a key contributor to advancing global best practices in material reliability and sustainability. With his record of technical leadership, innovation, and mentoring, Dr. Babakr stands as an outstanding candidate for the Best Researcher Award.

Profile: Scopus

Featured Publication

Effect of Hydrogen and Hydrogen-Blended Natural Gas on Additive-Manufactured 316L Stainless Steel in Ambient Oil and Gas Environments

Dr. Donghui Zhao | Nanomaterials | Best Researcher Award

Dr. Donghui Zhao | Nanomaterials | Best Researcher Award

Changzhou University | China

Dr. Donghui Zhao is a dynamic and dedicated researcher in the field of nanomedicine, currently serving as a Lecturer at the School of Pharmacy, Changzhou University. A graduate of Huazhong University of Science and Technology, with a major in Biomedical Engineering, Dr. Zhao has consistently demonstrated academic excellence and a passion for advancing scientific discovery. His research direction focuses on the development and application of nanomaterials for therapeutic innovation, particularly exploring the unique properties of nanoscale systems for biomedical use. With a growing reputation in the scientific community, Dr. Zhao has authored and co-authored 10 peer-reviewed papers indexed in SCI and Scopus databases, with an h-index of 5 and a total of 19 citations, reflecting the early yet meaningful impact of his research contributions. His work aims to push the boundaries of nanotechnology by exploring the potential of nanocarriers for drug delivery, targeted therapy, and diagnostics. Beyond publications, Dr. Zhao has been actively involved in advancing intellectual property development, holding six patents related to nanomaterial applications in medicine, which underscores his commitment to translational research and innovation. His contributions bridge fundamental science and applied pharmaceutical research, paving the way for the next generation of targeted treatments. Dr. Zhao’s efforts are focused on exploring more possibilities and potentials of nanomaterials, an area of research that holds immense promise for addressing some of the most pressing medical challenges of the 21st century. His long-term vision is to develop safe, effective, and affordable nanomedicines that can improve therapeutic efficacy while minimizing side effects, thus benefiting patients worldwide. As a faculty member, he mentors students in the fundamentals of nanotechnology, fostering an environment of curiosity, critical thinking, and scientific rigor. He is also actively engaged in interdisciplinary collaborations to integrate nanomaterials with pharmacology and biomedical engineering principles, further enhancing the scope and societal relevance of his research.Dr. Zhao’s career trajectory exemplifies the spirit of innovation, commitment to research excellence, and passion for knowledge dissemination that are essential for shaping the future of science and technology. These attributes make him a strong candidate for the Best Researcher Award, as his work continues to create a significant impact on both the academic community and the development of advanced biomedical solutions.

Profiles: Scopus | Orcid

Featured Publications

Cholesteryl Succinate-Modified Antimicrobial Peptides for Selective Sterilization of Staphylococcus aureus in Photodynamic Therapy

Advances in Carbon Dot Based Enhancement of Photodynamic Therapy of Tumors

Nanoplatforms Derived from Iron Dextran Combined with Ascorbic Acid for Enhanced Photothermal-Chemodynamic Therapy of Tumors

Antimicrobial Peptide Nanoparticle-Based Microneedle Patches for the Treatment of Bacteria-Infected Wounds

In Situ Synthesis of Multifunctional Tellurium Nanorods Stabilized by Polypeptide-Engineered for Photothermal-Sonodynamic Combination Therapy of Tumors

Dr. Aisha Kanwal | Polymer Science | Best Researcher Award

Dr. Aisha Kanwal | Polymer Science | Best Researcher Award

Zhejiang University | China

Dr. Aisha Kanwal is a highly motivated and innovative researcher specializing in inorganic chemistry and nanomaterials, with a strong focus on protein-based nanozymes, carbon dots, and antibacterial therapeutic applications. She earned her Ph.D. from Shaanxi Normal University, China, where her doctoral research centered on designing nanostructures for sensing and biomedicine. Dr. Kanwal has demonstrated remarkable expertise in synthesizing nanomaterials for detecting heavy metal ions, developing novel fluorescent carbon dots, and exploring their biological uses. She has an h-index of 8, with over 350 citations on her research articles, reflecting the strong impact and relevance of her work in nanotechnology and chemical sciences. Her academic journey is supported by hands-on expertise with advanced analytical instruments, including SEM, DLS, Zeta potential analysis, and FTIR spectroscopy. Alongside her research, Dr. Kanwal has contributed significantly to education, having served as a Senior Science Teacher and College Principal in KPK, Pakistan. She is actively engaged in interdisciplinary projects involving nanomaterials for environmental remediation and biomedical applications, aligning her research with sustainable and translational goals. Her dedication to bridging fundamental science with real-world applications positions her as a leading candidate for the Best Researcher Award.

Profiles: SCOPUS | GOOGLE SCHOLAR

Featured Publications

Hemoglobin-Promoted Growth of Polyhedral Gold Nanoparticles for the Detection of Glucose, H₂O₂, and Ascorbic Acid
Authors: A. Kanwal, B. Saif, A. Muhammad, W. Liu, J. Liu, H. Ren, P. Yang, Z. Lei
Journal: ACS Applied Nano Materials 6 (6), 4734–4746 (2023)

Nanomaterials in Water Purification/Desalination
Authors: N. Bibi, R.A. Qazi, A. Kanwal, N. Jamila, R. Khattak, W.H.Z. Wasil
Journal: Handbook of Nanomaterials, Biomedicine, Environment, Food, and Agriculture (2024)

Highly Selective Adsorption of Rhenium by Amyloid-like Protein Material
Authors: P.Y. Arif Muhammad, Qingmin Yang, Aisha Kanwal, Jian Zhao, Mohsan Nawaz, Hao Ren
Journal: SCIENCE CHINA Technological Sciences (2023)

Developments on Monovalent Anion-Selective Membranes (MASMs): A Mini-review of Our Recent Contributions
Authors: N. Bibi, H.U. Rehman, K. Khan, A. Kanwal, R. Gul, K. Ali
Journal: Journal of Membrane Science & Technology 9, 194 (2019)

Extraction and Facilitated Transport of Cd(II) Ions across Triethylenediamine–Carbon Tetrachloride Supported Liquid Membranes
Authors: N. Bibi, H.U. Rehman, K. Khan, A. Kanwal, R. Gul
Journal: Journal of Membrane Science & Technology 9 (194), 2 (2019)

Sustainable Rhenium Adsorption and Separation from Molybdenum-Containing Solution Using Soy Protein-Based Material
Authors: M. Arif, Q. Yang, A. Kanwal, J. Zhao, M. Nawaz, P. Yang, H. Ren
Journal: Journal of Environmental Chemical Engineering 13 (5) (2025)

Mechanistic Insights of Natural Plants and Microbial Extract Synthesis of Metal Nanoparticles and Nanocomposites
Authors: N.A. Naheed Bibi, Aisha Kanwal, Bushra Begum, Zahida Wasil, Nargis Jamila …
Journal: Expanding Nanobiotechnology: Applications and Commercialization, p. 26 (2025)