Dr. Jiqing Wang | Engineering | Research Excellence Award
Beihang University School of Electronic and Information Engineering | China
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Don State Technical University | Russia
Assoc. Prof. Dr. Anastasia Feofilova is an accomplished researcher in intelligent transport systems, traffic flow prediction, and urban mobility engineering. Her work focuses on advanced AI-driven traffic modeling, including hybrid CNN–LSTM/GRU architectures, attention mechanisms, geoinformation systems in transport logistics, cooperative intelligent transport systems (C-V2X), and the impacts of autonomous vehicles on road network efficiency. She has contributed to peer-reviewed journals and international book chapters, with research published in reputable outlets such as Smart Cities, Sensors, Applied and Computational Engineering, and E3S Web of Conferences. With an established Scopus profile, consistent citation impact, interdisciplinary collaborations, and contributions to software development and educational-methodological outputs, her research demonstrates both scientific rigor and applied societal relevance, particularly in smart city development and road safety enhancement.
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University of Naples Federico II | Italy
Prof. Dr. Gennaro Trancone is an environmental engineer and researcher whose work spans anaerobic digestion, dark fermentation, biofilm reactor design, biogas optimization, and circular bioeconomy strategies, with strong expertise in asbestos remediation, construction waste valorization, and marine environmental monitoring. His research contributions include advances in renewable biogas production from food waste, optimization of chemical treatments for biomass-based adsorbents, the use of dark fermentation–derived organic acids for concrete waste processing, and integrated chemical–ecotoxicological assessments for marine-coastal systems. He has also explored sediment washing for arsenic removal, environmental implications of micro- and nano-plastics in asphalt materials, and the mobility of toxic elements in foreshore sediments. With 155 citations, 9 published documents, and an h-index of 7, his publications in leading international journals highlight his significant role in environmental biotechnology, sustainable waste management, and the development of eco-innovative solutions for pollution prevention and resource recovery.
Bounaas, M., Haouichi, M., Gattal, B., Hamza, W., Benalia, A., Derbal, K., Benzina, M., Pizzi, A., Trancone, G., & Panico, A. (2025). Optimization of NaOH chemical treatment parameters for biomass-based adsorbents in cationic dye removal. Processes.
Achouri, O., Bianco, F., Trancone, G., & Race, M. (2025). A critical review of anaerobic biofilm reactors for the renewable biogas production from food waste. Journal of Environmental Chemical Engineering.
Trancone, G., Policastro, G., Spasiano, D., Race, M., Parrino, F., Fratino, U., Fabbricino, M., & Pirozzi, F. (2025). Treatment of concrete waste from construction and demolition activities: Application of organic acids from continuous dark fermentation in moving bed biofilm reactors. Chemical Engineering Journal.
Ferraro, A., Marino, E., Trancone, G., Race, M., Mali, M., Pontoni, L., Fabbricino, M., Spasiano, D., & Fratino, U. (2023). Assessment of environmental parameters effect on potentially toxic elements mobility in foreshore sediments to support marine-coastal contamination prediction. Marine Pollution Bulletin.
Veropalumbo, R., Oreto, C., Viscione, N., Pirozzi, F., Pontoni, L., Trancone, G., Race, M., & Russo, F. (2023). Exploring the effect on the environment of encapsulated micro- and nano-plastics into asphalt mastics for road pavement. Environmental Research.
Dr. Jungsoo Nam | Korea Institute of Industrial Technology | South Korea
Dr. Jungsoo Nam is a distinguished researcher in mechanical engineering, specializing in advanced manufacturing, precision machining, and nanotechnology applications. He earned his Ph.D. in Mechanical Engineering from Sungkyunkwan University, focusing on micro-drilling processes using nanofluids, after completing his undergraduate studies in Mechanical System and Design Engineering at Seoul National University of Science and Technology. Currently serving as Principal Researcher at the Korea Institute of Industrial Technology (KITECH), he has led pioneering projects in hybrid 3D printing, cryogenic machining, additive manufacturing, and carbon fiber reinforced plastics machining. His international research exposure includes a tenure as a Research Scholar at Purdue University, where he contributed to innovative developments in atomization-based spray coating and sensor fusion systems. Recognized with numerous prestigious honors such as the Young Researcher Award at PRESM, KITECH Best Researcher Award, and multiple best paper awards from leading engineering societies, Dr. NamDr. Jungsoo Nam has established himself as a leader in precision engineering and smart manufacturing technologies.
Dr. Jungsoo Nam pursued his academic journey in the field of mechanical engineering with a strong focus on advanced manufacturing processes and nanotechnology applications. He earned his Bachelor of Science in Mechanical System and Design Engineering from Seoul National University of Science and Technology in Seoul, Korea, where he laid the foundation for his expertise in precision engineering and system design. Building on this foundation, he advanced to graduate studies at Sungkyunkwan University in Suwon, Korea, where he successfully completed his doctoral degree in Mechanical Engineering. Under the mentorship of Dr. Sang Won Lee, his doctoral dissertation was titled “A Study on Characterization and Monitoring for Micro-Drilling Process Using Nanofluids,” reflecting his early commitment to pioneering research in machining processes and process monitoring. His academic background highlights a blend of strong theoretical knowledge and applied research, establishing a solid platform for his distinguished career in engineering innovation.
Dr. Jungsoo Nam has been widely recognized for his outstanding contributions to mechanical engineering and precision manufacturing through numerous prestigious honors and awards. His achievements include the Young Researcher Award at PRESM, multiple Best Paper Awards from the Korean Society for Precision Engineering, and the Korean Society of Mechanical Engineers Best Paper Award. At the Korea Institute of Industrial Technology, he was honored with both the Best Researcher Award and the President Award, reflecting his leadership and excellence in applied research. He has also received the KSPE Young Engineer Award, the Kistler Korea Technology Award, and the NAMRC Outstanding Paper recognition, further establishing his influence in the global research community. Early in his career, he earned the Graduate School Award for his dissertation with highest honors and was recognized for highly cited journal articles, including awards from the International Journal of Precision Engineering and Manufacturing. These accolades collectively highlight his innovation, impact, and sustained excellence in engineering research.
Dr. Jungsoo Nam has built an extensive research and professional career in the field of mechanical engineering with a focus on advanced manufacturing, precision machining, and smart technologies. He has been serving as Principal Researcher at the Korea Institute of Industrial Technology, where he has led projects on hybrid 3D printing, cryogenic machining, high productivity turning centers, and machining systems for carbon fiber reinforced plastics with innovative monitoring technologies. His international research exposure includes his tenure as a Research Scholar at Purdue University, where he contributed to atomization-based spray coating, sensor fusion, and development of advanced manufacturing systems. Prior to this, he worked as a Postdoctoral Research Associate at Sungkyunkwan University, advancing IoT-based machine tool prognostics and smart factory integration with cyber-physical systems. His early career as a Graduate Student Research Assistant involved groundbreaking work on environmentally friendly micromachining, nanofluid applications, and cryogenic machining technologies. Additionally, he served in the Republic of Korea Marine Corps, demonstrating discipline and leadership that continue to complement his research endeavors.
Dr. Jungsoo Nam’s research focus lies primarily in the fields of precision machining, advanced manufacturing processes, and sustainable engineering technologies. His work emphasizes micro-drilling, micro-grinding, and milling of difficult-to-machine materials such as titanium alloys and carbon fiber reinforced plastics, where he has pioneered the application of nanofluid minimum quantity lubrication to enhance machining efficiency and environmental sustainability. He has also contributed significantly to the integration of artificial intelligence, machine learning, and health monitoring systems in additive manufacturing and smart factory environments, enabling predictive diagnostics and real-time process optimization. His studies often address critical challenges in aerospace, automotive, and semiconductor applications, particularly through the development of environmentally friendly machining processes using nanodiamond particles, nano-solid lubricants, and cryogenic cooling. By bridging traditional machining with emerging smart technologies, Dr. Nam has established himself as a leader in sustainable precision engineering, ensuring high-quality manufacturing performance while reducing environmental impact and improving industrial competitiveness.
Experimental characterization of micro-drilling process using nanofluid minimum quantity lubrication
Year: 2011
Citations: 310
An experimental study on micro-grinding process with nanofluid minimum quantity lubrication (MQL)
Year: 2012
Citations: 286
Environmentally-friendly nano-fluid minimum quantity lubrication (MQL) meso-scale grinding process using nano-diamond particles
Year: 2010
Citations: 90
Optimization of environmentally benign micro-drilling process with nanofluid minimum quantity lubrication using response surface methodology and genetic algorithm
Year: 2015
Citations: 81
Machinability of titanium alloy (Ti-6Al-4V) in environmentally-friendly micro-drilling process with nanofluid minimum quantity lubrication using nanodiamond particles
Year: 2018
Citations: 76
Dr. Jungsoo Nam is a highly suitable candidate for the Research for Best Researcher Award. His consistent track record of impactful publications, innovative research contributions, and prestigious honors demonstrates excellence and leadership in his field. With minor improvements in global engagement, his potential for long-term influence remains exceptional.
Assist. Prof. Dr. Hakan Yaykaşlı | Kahramanmaraş İstiklal University | Turkey
Assist. Prof. Dr. Hakan Yaykaşlı is an accomplished academic specializing in materials science, mechanical engineering, and physics, with a distinguished background in advanced alloys, nanofillers, and composite materials. He holds dual doctoral degrees, one in Mechanical Engineering from Gaziantep University with a focus on nanofillers in hybrid fiber composites, and another in Materials Science and Engineering from Kahramanmaraş Sütçü Imam University, where he studied the structural and mechanical properties of advanced light alloys. He also earned a master’s degree in Physics, exploring the electrical and optical properties of boron-doped thin films, and several bachelor’s degrees in physics, mechanical engineering, and occupational health and safety, along with associate degrees in machinery and emergency disaster management. His academic career includes roles as Specialist, Lecturer, and currently Assistant Professor at Kahramanmaraş İstiklal University. Dr. Yaykaşlı has supervised numerous theses on advanced alloys, nanostructured coatings, and innovative materials, while contributing significantly to teaching, mentorship, and applied research in his field.
Assist. Prof. Dr. Hakan Yaykaşlı is a distinguished scholar with a strong academic background in physics, mechanical engineering, and materials science, reflected through his extensive education and research contributions. He earned a PhD in Mechanical Engineering from Gaziantep University with a thesis on the influence of nanofillers on the fracture and interlaminar shear properties of basalt carbon hybrid fiber reinforced composites, and another PhD in Materials Science and Engineering from Kahramanmaraş Sütçü Imam University, focusing on the structural, thermal, and mechanical properties of advanced AlMgTiB light alloys. His academic journey began with a master’s degree in Physics, where he investigated the electrical and optical properties of boron-doped thin films. He also completed bachelor’s studies in physics, mechanical engineering, and occupational health and safety, along with associate degrees in machinery and emergency disaster management, reflecting his interdisciplinary expertise. Through his academic endeavors, Dr. Yaykaşlı has cultivated a deep understanding of advanced materials, mechanical systems, and applied research, making significant contributions to engineering and science.
Assist. Prof. Dr. Hakan Yaykaşlı has been recognized for his academic contributions and research achievements through prestigious honors that highlight his dedication to advancing science and engineering. Among his notable recognitions is the Publication Incentive Award granted by TÜBİTAK, a highly regarded acknowledgment in Turkey that supports and encourages impactful scientific publications. This award reflects his commitment to producing high-quality research and contributing to the dissemination of knowledge in the fields of mechanical engineering, materials science, and physics. Such recognition not only underlines the academic value of his published works but also demonstrates his ability to align his research with national and international standards of excellence. The award serves as an important milestone in his career, motivating him to further expand his scientific output and continue guiding new research in advanced materials, nanotechnology, and composite structures while inspiring students and colleagues in his field.
Assist. Prof. Dr. Hakan Yaykaşlı’s research focus lies at the intersection of materials science, nanotechnology, and mechanical engineering, with a strong emphasis on the development and characterization of advanced functional materials. His studies explore the mechanical, structural, thermal, optical, and radiation shielding properties of alloys, composites, glasses, and nanomaterials, particularly high entropy alloys, borate and barium-based glasses, and polymer nanocomposites. He has contributed significantly to the field of nanostructured coatings, thin films, and hybrid fiber composites by investigating the role of nanofillers, dopants, and processing techniques on enhancing mechanical strength, fracture resistance, and multifunctional properties. A key area of his expertise is radiation shielding, where he develops innovative glass and alloy systems designed to provide effective protection while maintaining structural integrity. His interdisciplinary approach integrates experimental methods with advanced characterization techniques, contributing to applications in nuclear energy, electronics, aerospace, additive manufacturing, and sustainable engineering materials.
Mechanical and dynamic properties of basalt fiber-reinforced composites with nanoclay particles
Year: 2020 | Citations: 76
Microstructural, thermal, and radiation shielding properties of Al50B25Mg25 alloy prepared by mechanical alloying
Year: 2022 | Citations: 54
Investigation of structural, morphological, mechanical, thermal and optical properties of PVA-ZnO nanocomposites
Year: 2021 | Citations: 35
Investigation of the properties of In doped NiO films
Year: 2014 | Citations: 34
Investigating the PVA/TiO2/CDs polymer nanocomposites: effect of carbon dots for photocatalytic degradation of Rhodamine B
Year: 2022 | Citations: 30
Assist. Prof. Dr. Hakan Yaykaşlı is a strong candidate for the Research for Best Researcher Award. His academic diversity, dual doctoral achievements, and contributions to materials science and mechanical engineering underline his significant role in advancing research. With increased international visibility and expanded research collaborations, he has the potential not only to compete strongly but also to emerge as a leading figure in his discipline, making him a suitable nominee for this recognition.
Associate professor, at Shanghai Maritime University, China.
Dr. Weimin Xu, Ph.D., is an accomplished associate professor specializing in Control Science and Engineering. 🎓 With a career spanning over three decades, Dr. Xu earned his bachelor’s degree in Automation from Northeastern University, China, in 1985, followed by a master’s in 1992 and a Ph.D. in 1997 from the same institution. He has been actively contributing to academia and research at Shanghai Maritime University since 2009. In 2013, he further enriched his academic exposure through a one-year visiting research program at the University of Southern California 🇺🇸. Dr. Xu’s expertise lies in nonlinear systems, adaptive and intelligent control, and robotics. 🤖 He has authored over 30 academic papers and holds more than 20 invention patents. His work significantly impacts robotics and intelligent systems, blending theoretical foundations with practical applications in automation and control.
Dr. Weimin Xu pursued all his academic qualifications from Northeastern University, China. He began with a Bachelor’s degree in Automation in 1985, where he gained foundational knowledge in electrical and mechanical systems. With a growing interest in system dynamics and process automation, he continued his studies at the same university, earning a Master’s degree in Control Science and Engineering in 1992. Driven by a deep curiosity about system behavior and advanced control theories, he completed his Ph.D. in Control Science and Engineering in 1997. 🧠 His doctoral research laid the groundwork for his current expertise in nonlinear and intelligent control systems. Later, in 2013, Dr. Xu broadened his international academic horizon through a one-year visiting research program at the University of Southern California, where he collaborated with global experts and explored modern advancements in robotics and adaptive control. 🌐
Dr. Xu began his professional journey in academia shortly after completing his Ph.D. in 1997. His early career involved contributing to control engineering projects and mentoring students at various institutions. Since 2009, he has been serving as a faculty member at Shanghai Maritime University, actively involved in teaching, supervising graduate students, and leading advanced research in control systems. 🏫 His academic responsibilities are complemented by hands-on research in intelligent systems and automation. In 2013, he was a visiting scholar at the University of Southern California, a pivotal experience that allowed him to engage with cutting-edge research and collaborate internationally. Over the years, Dr. Xu has become a recognized expert in the control and automation field, integrating theoretical knowledge with real-world applications in robotics, crane systems, and intelligent automation. ⚙️ His contributions have significantly enhanced the university’s research capabilities in engineering and intelligent control.
Dr. Xu’s research explores the dynamic landscape of control theory and intelligent systems. His key focus areas include nonlinear system theory, adaptive control, and sliding mode control—each critical for understanding and controlling complex engineering systems. ⚙️ He is particularly passionate about robot manipulator control, where precision and adaptability are essential. In addition, Dr. Xu’s work delves into bridge crane state detection and intelligent control, reflecting his commitment to real-world industrial applications. 🚢 His research often integrates classical control methodologies with modern AI techniques, creating intelligent, robust, and adaptive control strategies. Dr. Xu continually investigates how automation can enhance operational efficiency and safety in engineering systems. 🤖 His innovative approaches aim to bridge the gap between control theory and practice, ultimately improving the reliability and intelligence of machinery across various sectors.
Throughout his academic career, Dr. Xu has received multiple awards and recognitions that highlight his contributions to control engineering and intelligent systems. 🏆 His work on bridge crane detection and robotic control has earned accolades for both innovation and practical relevance. With more than 20 authorized invention patents, many of which focus on automation and intelligent detection, Dr. Xu’s inventive spirit has been consistently celebrated at national and institutional levels. 🇨🇳 He has also been recognized for excellence in research and teaching at Shanghai Maritime University, where he has played a pivotal role in advancing engineering education. His dedication to integrating cutting-edge research into student learning and real-world applications has made him a valuable mentor and leader. Dr. Xu’s achievements are a testament to his commitment to continuous innovation and the impactful dissemination of knowledge in the engineering community. 📘
Dr. Xu has published over 30 peer-reviewed academic papers, contributing significantly to nonlinear systems and intelligent control. His research is widely cited, reflecting his influence in the academic community. 📖 Some of his representative publications include:
1. Xu, W., et al. (2021)
Title: Adaptive Sliding Mode Control for Robot Manipulators with Input Nonlinearity
Journal: Robotics and Autonomous Systems
Citations: 45
Summary:
This paper presents an adaptive sliding mode control (ASMC) approach designed specifically for robot manipulators with significant input nonlinearities such as dead zones and input saturation. The authors develop a robust controller that adapts in real time to system uncertainties and unmodeled dynamics while preserving stability and convergence.
Key Contributions:
A novel ASMC framework incorporating adaptive laws to handle unknown input nonlinearities.
Lyapunov-based stability analysis ensures system convergence.
Simulation and experimental results on a 2-DOF manipulator show improved trajectory tracking and robustness compared to traditional SMC.
Impact:
Widely cited for its robustness in dealing with non-ideal actuator behavior in robotics applications.
2. Xu, W., et al. (2020)
Title: Intelligent Control of Bridge Crane Based on Sensor Fusion and Neural Networks
Conference: IEEE Conference on Control and Automation
Citations: 30
Summary:
This work proposes an intelligent control strategy for bridge cranes using a combination of sensor fusion (gyroscopes, vision, encoders) and neural network-based control algorithms. The aim is to reduce swing and improve payload accuracy during transport.
Key Contributions:
Development of a sensor fusion algorithm to accurately estimate the payload position and velocity.
Neural networks are trained to mimic optimal control behavior under different load conditions.
Simulation and real-time experiments confirm the effectiveness in swing suppression and trajectory accuracy.
Impact:
Recognized for advancing automation in industrial lifting systems using AI-based techniques.
3. Xu, W., et al. (2019)
Title: Nonlinear Adaptive Control with Observer for Uncertain Systems
Journal: Wireless Networks
Citations: 28
Summary:
This paper addresses the control of nonlinear uncertain systems using a nonlinear adaptive control scheme combined with an observer design to estimate unmeasurable states. The focus is on wireless-enabled systems with uncertain parameters and delays.
Key Contributions:
Design of a state observer for nonlinear systems with partially known dynamics.
Use of adaptive control to handle parametric uncertainties and time-varying disturbances.
Stability proofs using Barbalat’s Lemma and Lyapunov theory.
Impact:
Cited in research on wireless sensor-actuator networks and embedded control in uncertain environments.
4. Xu, W., et al. (2018)
Title: Intelligent Fault Detection in Industrial Systems using Hybrid Neural Models
Journal: Expert Systems with Applications
Citations: 52
Summary:
This paper proposes a hybrid neural network model for fault detection in industrial systems, combining convolutional neural networks (CNNs) and recurrent neural networks (RNNs). It targets early-stage anomaly detection in time-series data from manufacturing sensors.
Key Contributions:
A novel hybrid model that captures both spatial features (via CNN) and temporal dynamics (via RNN).
A feature fusion strategy for improved diagnostic performance.
Evaluation on real-world datasets from manufacturing processes shows high accuracy and low false alarm rates.
Impact:
One of the most cited papers in intelligent maintenance and predictive diagnostics, influencing work on Industry 4.0 and smart manufacturing.
Dr. Weimin Xu is a strong candidate for the Best Researcher Award due to his broad and practical research contributions, notable patent record, and long-standing academic service. His work bridges theoretical advancement and practical application in intelligent control systems, aligning with the priorities of innovation-driven recognition.
Mr. Md Atiqur Rahman, University of Bolton, United Kingdom
Md Atiqur Rahman is a dedicated aerospace engineering lecturer and Ph.D. researcher specializing in natural fiber-based materials for aerospace applications. With over nine years of teaching experience, he currently serves as an Engineering Lecturer at Blackpool & The Fylde College, developing course materials and assessments aligned with Lancaster University guidelines. His previous roles include teaching aeronautical engineering at Preston College, University of Bolton, and aviation colleges in Bangladesh. Recognized for his excellence in education, he has contributed to curriculum development and student mentorship, with his efforts earning institutional and national recognition. His research focuses on sustainable materials for next-generation aerospace structures, with multiple publications in progress. As a committed academic and researcher, he actively participates in professional conferences and training, ensuring his contributions remain at the forefront of aerospace education and innovation.
Md Atiqur Rahman is pursuing a Ph.D. in Aerospace Engineering at the University of Bolton, focusing on the development of natural fiber-based materials for aerospace applications. He is also completing an MPhil in Mechanical Engineering at the same university. His academic journey began with a Bachelor of Engineering (Honours) in Aerospace Engineering from the University of Hertfordshire, UK. His extensive academic background has equipped him with expertise in aerodynamics, propulsion systems, structural mechanics, and bio-composites. His research integrates theoretical knowledge with practical applications, particularly in sustainable aerospace materials. Throughout his education, he has engaged in multiple research projects, conference presentations, and academic collaborations. His strong analytical skills and proficiency in computational tools like SolidWorks, Ansys, and MATLAB have enhanced his research capabilities. His commitment to continuous learning and professional development has enabled him to bridge the gap between academia and industry through innovative research and teaching methodologies.
Md Atiqur Rahman has extensive experience as an aerospace and mechanical engineering lecturer. Currently, he teaches at Blackpool & The Fylde College, developing curriculum content and assessments for students up to Level 6. Previously, he was an Aeronautical Engineering Lecturer at Preston College, where he taught BTEC, City & Guilds, and EAL programs. At the University of Bolton, he worked as a lecturer, supporting student learning and research initiatives. In Bangladesh, he taught at Cambrian International College of Aviation and the United College of Aviation, contributing to curriculum development and internal quality assurance. He has a strong background in student mentorship, accreditation processes, and module development. His teaching approach emphasizes practical applications, utilizing industry-standard software and experimental setups. His ability to adapt teaching methodologies to student needs has significantly improved academic performance and comprehension, making him a valued educator in aerospace and mechanical engineering disciplines.
Md Atiqur Rahman has been recognized for his excellence in education and research. He was honored as the Best Lecturer at Cambrian International College of Aviation in 2022, acknowledging his dedication to student success. Under his mentorship, a student was nominated and received the BTEC Award 2021 (Bronze Certificate) as the Engineering Learner of the Year. His contributions to curriculum development and academic quality assurance have been widely appreciated within his institutions. Additionally, he has received multiple certifications from BTEC Pearson, recognizing his expertise in assignment writing, assessment planning, and verification. His participation in international conferences, such as the RAeS High-Speed Aerodynamics Conference and the Government Events’ BAME Education Summit, reflects his commitment to professional growth. His research achievements include multiple accepted journal publications and conference presentations on sustainable aerospace materials, reinforcing his position as an emerging leader in aerospace engineering education and research.
📄 Palmyra Palm Shell (Borassus flabellifer) Properties Part 2: Insights into Its Thermal and Mechanical Properties – Cited by: 3 – Year: 2024
📄 Palmyra Palm Shell (Borassus flabellifer) Properties Part 1: Insights into Its Physical and Chemical Properties – Cited by: 3 – Year: 2024
📄 Effect of Alkali Treatment on Dynamic Mechanical Properties of Borassus Flabellifer Husk Fibre Reinforced Epoxy Composites – Cited by: 2 – Year: 2025
📄 Palmyra Palm Shell (Borassus flabellifer) Properties Part 3: Insights into Its Morphological, Chemical and Thermal Properties after Alkali Treatment – Cited by: 2 – Year: 2024
📄 Optimizing Borassus Husk Fibre/Epoxy Composites: A Study on Physical, Thermal, Flexural and Dynamic Mechanical Performance – Cited by: 1 – Year: 2025
📄 Enhancing Thermal and Dynamic Mechanical Properties of Lignocellulosic Borassus Husk Fibre/Epoxy Composites through Alkali Treatment – Year: 2025
Associate Professor, at Ankara Yildirim Beyazit University, Turkey.
Dr. Nimet Yildirim Tirgil is an Assistant Professor in Biomedical Engineering at Ankara Yıldırım Beyazıt University. She specializes in biosensor technology, nanomaterials, and electrochemical analysis for environmental and medical applications. With a strong background in bioengineering and biochemistry, Dr. Yildirim Tirgil has led multiple research projects funded by TÜBİTAK and TÜSEB, focusing on biosensing platforms for rapid diagnostics, including COVID-19 antibody detection, tumor DNA analysis, and neurotransmitter monitoring. Her work has led to several patents, high-impact publications, and collaborations in the field of biosensor innovation. Dr. Yildirim Tirgil is committed to advancing analytical chemistry and nanotechnology to develop cutting-edge biosensing solutions.
Dr. Yildirim Tirgil holds a Ph.D. in Bioengineering from Northeastern University (2016), where she developed next-generation biosensor systems for environmental water quality monitoring under the supervision of Prof. April Z. Gu. She earned her M.Sc. in Biochemistry from Ege University (2009), focusing on bacterial sensors and nanomaterial-modified electrodes, and completed her B.Sc. in Biochemistry (2007) from the same university. Her academic journey has equipped her with interdisciplinary expertise in bioengineering, nanotechnology, and analytical chemistry, enabling her to contribute significantly to biosensor research and development.
Dr. Yildirim Tirgil has been an Associate Professor at Ankara Yıldırım Beyazıt University since 2018, leading research in biomedical engineering. She has extensive experience in supervising graduate theses, mentoring students in biosensor technology, and developing nanomaterial-based detection systems. She has served as Principal Investigator on numerous national and international research projects, including the development of electrochemical biosensors for detecting environmental pollutants, disease biomarkers, and bioterrorism agents. Her collaborations extend to government-funded research programs and industrial partnerships, advancing biosensing technologies for healthcare, food safety, and environmental monitoring.
Dr. Yildirim Tirgil’s research focuses on biosensor development, nanotechnology, and electrochemical analysis for medical diagnostics and environmental applications. Her primary interests include:
Aptamer-based biosensors for disease biomarker detection.
Electrochemical sensing platforms for rapid pathogen and toxin identification.
Nanomaterial-modified electrodes for enhanced biosensing performance.
Wearable and paper-based biosensors for real-time health monitoring.
Smart biosensor integration for food safety and environmental protection.
Her interdisciplinary research integrates biotechnology, analytical chemistry, and materials science to develop innovative biosensing solutions with high sensitivity and specificity.
Dr. Yildirim Tirgil has received multiple awards for her groundbreaking work in biosensor technology, including:
Best Research Paper Award in Analytical Chemistry (2024).
TÜBİTAK Research Excellence Award for contributions to biosensor innovation (2023).
Outstanding Young Scientist Award in Biomedical Engineering (2022).
Top Cited Researcher Recognition in ACS Applied Polymer Materials (2025).
Innovation Award for the development of a smartphone-assisted biosensor system (2021).
Her achievements highlight her impact on sensor technology and analytical diagnostics, making her a leading figure in biosensing research.
Dr. Yildirim Tirgil has published extensively in high-impact journals. Some of her key publications include:
Sanattalab, E., Ayni, E., Kaya, K., & Yildirim‐Tirgil, N. (2025).
Applications of Magnetic Nanocomposites in Lateral Flow Assays.
Journal: ChemistrySelect
Summary: This paper explores the use of magnetic nanocomposites in lateral flow assays, enhancing sensitivity and specificity for rapid diagnostic applications.
Yildirim-Tirgil, N., Ayni, E., & Kaya, K. (2025).
Electrochemical Detection of SARS-CoV2 IgG Using Magnetic Nanocomplexes.
Journal: Journal of Nanoparticle Research
Summary: The study presents a novel electrochemical biosensor utilizing magnetic nanocomplexes for detecting SARS-CoV-2 IgG antibodies, providing a potential point-of-care diagnostic solution.
Avci, M. B., Kocer, F., Yildirim-Tirgil, N., et al. (2025).
Optofluidic Guided-Mode Resonance Platform for Binding Kinetics.
Journal: IEEE Sensors Journal
Summary: This research introduces an optofluidic guided-mode resonance platform for real-time analysis of biomolecular interactions, focusing on binding kinetics measurements.
Yildirim-Tirgil, N., et al. (2025).
Development of a Polypyrrole–Chitosan Nanofiber-Based Enzymatic Biosensor.
Journal: ACS Applied Polymer Materials
Summary: The paper discusses the fabrication and characterization of an enzymatic biosensor using polypyrrole–chitosan nanofibers for enhanced sensitivity in biochemical detection.
Didarian, R., Ozbek, H. K., Ozalp, V. C., Erel, O., & Yildirim-Tirgil, N. (2024).
Enhanced SELEX Platforms for Aptamer Selection.
Journal: Molecular Biotechnology
Summary: The study proposes improvements in SELEX (Systematic Evolution of Ligands by EXponential Enrichment) methodologies for more efficient aptamer selection, applicable in biosensing and therapeutics.
Cuhadar, S. N., Durmaz, H., & Yildirim-Tirgil, N. (2024).
Multi-Detection of Serotonin and Dopamine via Electrochemical Aptasensor.
Journal: Chemical Papers
Summary: This paper introduces an electrochemical aptasensor for the simultaneous detection of serotonin and dopamine, contributing to advancements in neurochemical monitoring.
Sahin, S., & Tirgil, N. Y. (2024).
Circulating Tumor DNA (ctDNA) Detection via Electrochemical Biosensing.
Journal: MANAS Journal of Engineering
Summary: The study develops an electrochemical biosensor for detecting circulating tumor DNA (ctDNA), offering potential applications in early cancer diagnostics.
Dr. Nimet Yildirim Tirgil is a highly qualified and competitive candidate for the Best Researcher Award. Her groundbreaking work in biosensors, nanomaterials, and biomedical applications, along with strong project leadership and patent contributions, position her as a leader in her field. Enhancing international collaborations and industry partnerships could further elevate her candidacy.
Associate professor, Northeast Electric Power University, China
Assoc. Prof. Dr Saeed Zolfaghari Moghaddam, Urmia University of Technology, Iran
Dr. Saeed Zolfaghari Moghaddam is an esteemed academic in Electrical Engineering, specializing in power systems planning, renewable energy, and power market dynamics. 📚⚡ He earned his PhD from Amirkabir University, MSc from Tehran University, and BSc from Iran University of Science and Technology. His research includes advanced methods in smart grids, electric vehicle charging, and microgrid stability. 🔋🌍 Dr. Moghaddam has authored numerous high-impact journal articles and led industrial projects in power system automation and electromagnetic compatibility. A dedicated educator, he teaches courses in electrical machines, smart grids, and power system planning. 🎓✨
Assoc. Prof. Dr. Saeed Zolfaghari Moghaddam is a distinguished academic with expertise in electrical engineering. He earned his PhD in Power Engineering from Amirkabir University of Technology, Tehran, Iran 🇮🇷. Prior to this, he completed his MSc in Power Engineering from the University of Tehran and his BSc in Electronics Engineering at the Iran University of Science and Technology, Tehran. Dr. Moghaddam has made significant contributions to the field of power systems and electronics, leveraging his academic background to advance research and innovation in electrical engineering. ⚡📚
Assoc. Prof. Dr. Saeed Zolfaghari Dr. Moghaddam specializes in renewable energy, power systems planning, and reliability. His research focuses on optimizing power markets, ensuring sustainable and reliable electricity distribution. With expertise in electrical apparatus design and industrial automation, Dr. Zolfaghari also works on advanced system calculations, including load flow and short-circuit analysis. His contributions to the technical side of power systems play a vital role in improving efficiency and sustainability within the energy sector. 🌍💡🔧
Assoc. Prof. Dr. Saeed Zolfaghari is a distinguished academic in electrical engineering, having taught a wide array of undergraduate and graduate courses. His expertise spans subjects such as Electrical Machines, Power Systems Analysis, Smart Grid Control, and Engineering Mathematics. With a strong commitment to education, he plays a vital role in shaping the next generation of engineers and researchers. His passion for teaching and advancing the field highlights his dedication to nurturing students’ skills and fostering a deep understanding of complex engineering concepts. Dr. Zolfaghari’s influence continues to inspire both students and colleagues.
Assoc. Prof. Dr. Saeed Zolfaghari is a distinguished researcher with significant contributions to industrial projects. His work spans various fields, including grounding in military systems, DG-connected substation automation, and optimizing Combined Heat and Power (CHP) and Photovoltaic (PV) capacities. Dr. Zolfaghari’s expertise lies in applying cutting-edge research to address complex engineering challenges, delivering practical solutions with real-world impact. His achievements highlight his role in shaping innovative solutions within the engineering and energy sectors. Through these projects, Dr. Zolfaghari continues to bridge the gap between academic research and industrial applications. 💡🔧🌱
Assoc. Prof. Dr. Saeed Zolfaghari Moghaddam’s research primarily focuses on energy systems, optimization techniques, and power networks, particularly in the context of renewable energy integration and grid planning. His work includes stochastic and robust optimization, wind energy integration, transmission and distribution expansion planning, and game theory applications in electrical networks. Dr. Moghaddam’s expertise also extends to heat transfer enhancement in distribution transformers and multi-stage stochastic planning under uncertainties. His contributions have significant implications for energy efficiency and sustainable power systems. 🌍⚡🔋📊
A new method to adequate assessment of wind farms’ power output
Coordinated scheme for expansion planning of distribution networks: A bilevel game approach
Heat transfer enhancement in distribution transformers using TiO2 nanoparticles