Wenjie Ma | Materials and Structures | Best Researcher Award

Dr. Wenjie Ma | Materials and Structures | Best Researcher Award

lecturer, Lanzhou Jiaotong University , China

Dr. Wenjie Ma is a lecturer at Lanzhou Jiaotong University specializing in geotechnical engineering. He earned his Ph.D. from Tongji University and focuses on pile-soil interaction, unsaturated soil dynamics, and numerical methods. His research integrates fractional-order viscoelastic models to enhance foundation design in complex soil conditions. Dr. Ma has published extensively in SCI-indexed journals, contributed to national research projects, and collaborated internationally. He is a board member of the International Journal of Geotechnical Engineering and an active member of professional societies. His work significantly impacts geotechnical modeling and seismic response studies.

Profile

orcid

Education: 🎓

Ph.D. in Geotechnical Engineering from Tongji University, specializing in pile-soil interaction and numerical modeling | 🎓 Master’s Degree in Civil Engineering, focusing on soil dynamics and foundation stability | 🎓 Bachelor’s Degree in Civil Engineering, emphasizing structural mechanics and soil mechanics | 📚 Completed advanced coursework in unsaturated soil mechanics, seismic engineering, and computational geomechanics | 🎖️ Received specialized training in fractional-order viscoelastic models and dynamic analysis of foundation systems.

Experience: 👨‍🏫

Lecturer at Lanzhou Jiaotong University, teaching geotechnical engineering and numerical modeling | 🏗️ Researcher in geotechnical engineering, focusing on pile dynamics and soil-structure interaction | 🔬 Led two major national research projects on seismic response and soil mechanics | 🤝 Collaborated with Nanyang Technological University and National Natural Science Foundation of China on high-impact research | 🏢 Involved in five consultancy and industry projects related to foundation design and geotechnical assessments | 📝 Published 19 SCI-indexed journal articles and contributed to international geotechnical conferences.

Awards and Honors: 🏆

China Railway Society Science and Technology Special Prize for outstanding research in geotechnical engineering | 🎖️ Recognized as a promising young scientist in soil mechanics and foundation engineering | 📜 Recipient of multiple research grants from the National Natural Science Foundation of China | 🏅 Awarded for excellence in academic research and innovation in geotechnical modeling | 🌍 Honored for international collaborations and contributions to seismic engineering studies | 📚 Acknowledged for editorial contributions to the International Journal of Geotechnical Engineering.

Research Focus: 🏗️

Pile-soil interaction and dynamic behavior of foundations in unsaturated soils | 📈 Application of fractional-order viscoelastic models in soil mechanics | 🔬 Seismic response analysis of foundation systems under dynamic loading | 🏛️ Geotechnical modeling and advanced numerical methods for soil structure interaction | 🏢 Development of innovative foundation solutions for complex geotechnical conditions | 🌍 International research collaborations to improve engineering resilience in seismic-prone regions.

Publications 

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Dynamic Torsional Response of Pile in Fractional‐Order Viscoelastic Unsaturated Transversely Isotropic Soil With Imperfect Contact

Torsional response of pile partially embedded in fractional-order viscoelastic unsaturated transversely isotropic soil

Torsional vibration of a pipe pile in unsaturated cross-anisotropic soil based on the fractional viscoelastic model

Conclusion

Dr. Wenjie Ma is an outstanding candidate for the Best Researcher Award, with a well-rounded profile of high-impact research, innovation, and academic leadership. His groundbreaking work in unsaturated soil dynamics and pile-soil interaction, coupled with his strong professional engagements and industry collaborations, makes him a deserving nominee. With further interdisciplinary expansion and international recognition, he could further solidify his standing as a leading global expert in geotechnical engineering.

nasrin Gharahi | environment | Best Researcher Award

Assoc. Prof. Dr. nasrin Gharahi | environment | Best Researcher Award

shahrekord, shahrekord university, Iran

Nasrin Gharahi is an accomplished environmental scientist with a strong academic background and extensive experience in soil and water conservation. She holds both an MSc in Physical Land Resources and a PhD in Bioscience Engineering from Ghent University, Belgium. Her research spans critical areas such as soil pollution, groundwater quality, and the impact of environmental stressors on ecosystems. Nasrin has been active in both theoretical and applied environmental science, contributing to the development of sustainable solutions for land management and pollution control. She is a dedicated faculty member in the Environmental Sciences Department, where her work consistently addresses pressing global environmental issues, particularly in semi-arid regions. Her interdisciplinary approach and collaboration with international experts enhance the reach and impact of her research, making her a respected figure in environmental science circles.

Profile

Education 

Nasrin Gharahi pursued her higher education at Ghent University, Belgium. She completed her MSc in Physical Land Resources between 2004 and 2007, where she focused on understanding land and soil systems from a physical and environmental perspective. Driven by a passion for addressing global environmental challenges, she continued her studies and earned a PhD in Bioscience Engineering from Ghent University between 2008 and 2012. Her doctoral research explored nonparametric techniques for predicting soil bulk density in tropical rainforests, particularly in Rwanda. Her academic journey in Belgium, renowned for its research in environmental sciences, has laid the foundation for her continued exploration into soil science, environmental conservation, and bioscience engineering. The combination of physical and bioscientific expertise has enabled Nasrin to contribute significantly to environmental solutions with a focus on sustainable practices and soil-water conservation techniques.

Research Focus 

Nasrin Gharahi’s research focuses primarily on the intersection of soil science, environmental pollution, and water quality. Her work explores how various environmental factors, such as plastic pollution and metal bioaccumulation, affect soil health, plant growth, and water resources. She is particularly interested in finding sustainable solutions to soil erosion, nitrate leaching, and the impact of climate change on ecosystems, with a focus on semi-arid regions. Nasrin’s interdisciplinary approach combines biogeochemistry, land management, and bioscience engineering to create practical applications for environmental conservation. She investigates innovative techniques such as the use of biochar and nano-clay particles to improve soil quality and reduce pollution. In addition, her research involves evaluating groundwater quality for drinking purposes, studying vegetation patterns, and understanding nitrogen trace gas emissions from tropical forests. Her work contributes to the development of policies aimed at mitigating environmental degradation and fostering sustainable land use.

Publications 

  1. Nonparametric techniques for predicting soil bulk density of tropical rainforest topsoils in Rwanda 🌍🌱
  2. Effect of plastic pollution in soil properties and growth of grass species in semi-arid regions 🌿🌍
  3. Spatial variations of nitrogen trace gas emissions from tropical mountain forests in Nyungwe, Rwanda 🌲💨
  4. Evaluation of groundwater quality for drinking purposes: a case study from Beheshtabad Basin, Iran 💧🌍
  5. Cd and Pb bioaccumulation in Eurasian watermilfoil in relation to the role of metal contents in wetland sediments 🐟🌾
  6. Effects of vegetation pattern and of biochar and powdery soil amendments on soil loss by wind 🌿💨
  7. Detailed regional predictions of N2O and NO emissions from a tropical highland rainforest 🌳💨
  8. Investigation of surface and tunnel runoff and sediment production in saline-sodic soil 🌊🌱
  9. Investigating the effect of different water and soil conservation practices on soil properties 🌱💧
  10. Investigating spatial and temporal trends of groundwater quality in Chaharmahal va Bakhtiari Province, Iran 💧📊
  11. Investigating the effect of nano-clay particles and biochar on nitrate leaching and soil stability 🌱💨
  12. Combining climate information and remote sensing in the integrated drought index 🌍🌡️
  13. Effect of Biochar and Zeolite on Cadmium Uptake in Green bell Pepper and Leaching 🌶️💧
  14. Comparison of Separation Methods for Baseflow from Direct Runoff in Doroud Basin, Lorestan, Iran 🌊🧪
  15. Study of the trophic status of Choghakhor wetland using a trophic state index 🏞️📊
  16. The relationship of land use and quality of groundwater resources in Chaharmahal & Bakhtiari province 💧🌍
  17. Sustainable practices for diminishing nitrate leaching 🌱💧
  18. Water quality and eutrophication status of the Zarivar Wetland, Iran 🌊💧
  19. Comparison of Sampling Designs for Soil Sediment Source Fingerprinting 🌍🔬
  20. Temporal variation pattern of runoff and surface sediment and piping erosion in silt loam soil 🌧️🌿

Jun-woo Park | Lithium sulfur batteries | Best Researcher Award

Dr. Jun-woo Park | Lithium sulfur batteries | Best Researcher Award

Principal Researcher, Korea Electrotechnology Research Institute, South Korea

Dr. Jun-Woo Park is a distinguished Principal Researcher at the Korea Electrotechnology Research Institute (KERI) and an Associate Professor at the University of Science and Technology (UST) in Korea. With a strong background in chemical engineering, he has dedicated his career to pioneering work in advanced battery technologies, particularly all-solid-state batteries, sulfide-based electrolytes, and lithium-sulfur batteries. Since 2013, he has been at the forefront of research in the Battery Research Division at KERI, while also contributing as a committee member for various governmental and industry groups. His academic journey began with his Ph.D. and M.S. in Chemical Engineering from Yokohama National University, Japan, where he worked under the guidance of Prof. Masayoshi Watanabe. Dr. Park’s contributions to battery technology have earned him numerous prestigious awards and recognitions, cementing his reputation as one of the leading experts in his field.

Profile

Education 

Dr. Jun-Woo Park completed his Ph.D. and M.S. degrees in Chemical Engineering at Yokohama National University, Japan. His doctoral research, under the mentorship of Prof. Masayoshi Watanabe, focused on advanced materials for energy storage and electrochemical applications. His Ph.D. work laid the foundation for his later contributions to sulfide-based solid electrolytes and all-solid-state batteries, which are critical to the development of next-generation energy storage systems. Throughout his academic career, Dr. Park has been committed to bridging theoretical research with practical applications, with an emphasis on advancing the energy storage field. His work at Yokohama National University provided the essential skills and knowledge that have driven his pioneering research at KERI and UST, where he continues to shape the future of energy storage technology. Dr. Park’s strong academic background has propelled his career, making him a prominent figure in electro-functional materials engineering.

Awards and Honors 

Dr. Jun-Woo Park’s career is marked by numerous prestigious awards and recognitions. In 2024, he received the KERI Grand Award for his contributions to the development of all-solid-state batteries, including a highly impactful JCR top 3% publication. In 2023, he was honored with the Minister of Trade, Industry, and Energy Award for planning the lithium-sulfur battery sector and achieving a preliminary feasibility study approval for the “High-Performance Next-Generation Secondary Battery Project for Eco-Friendly Mobility.” Dr. Park also received the Minister of Science and ICT Award in 2023 for his development of low-cost, mass-production technology for sulfide-based solid electrolytes, used in non-flammable all-solid-state batteries. Other notable honors include the KERI Award for Excellence in 2022, as well as recognition for his contributions to energy efficiency improvement in secondary batteries. These awards reflect his significant and ongoing impact on the field of battery research and energy storage technology.

Research Focus 

Dr. Jun-Woo Park’s research is focused on the development of advanced materials for high-performance energy storage systems. His primary areas of interest include all-solid-state batteries, sulfide-based solid electrolytes, and lithium-sulfur batteries. He works extensively on improving the performance, energy density, and stability of next-generation batteries, with particular emphasis on solid-state technology, which is safer and more efficient than conventional liquid-electrolyte batteries. His research also explores flexible and ultra-lightweight batteries for applications in eco-friendly mobility, wearable electronics, and other emerging technologies. Dr. Park’s work on the mechanistic understanding and synthesis of superionic conductors has contributed to significant advances in battery efficiency and safety. His innovative approach to material design, such as the development of functionalized carbon nanotubes and poly-crystalline cathodes, has positioned him as a leader in the energy storage field. Dr. Park’s research aims to drive the transition to sustainable energy storage solutions.

Publication 

  1. Advanced performance through mechanofusion-induced uniform interfacial layers for all-solid-state lithium-sulfur batteries 🧪🔋
  2. A Promising Approach to Ultra-Flexible 1 Ah Lithium–Sulfur Batteries Using Oxygen-Functionalized Single-Walled Carbon Nanotubes 🌀⚡
  3. Lithiation-driven cascade dissolution coprecipitation of sulfide superionic conductors 🧲🔬
  4. Superior conductive 1D and 2D network structured carbon-coated Ni-rich Li1.05Ni0.88Co0.08Mn0.04O2 as high-ion-diffusion cathodes for lithium-ion batteries 🧑‍🔬🔋
  5. Infiltration-driven performance enhancement of poly-crystalline cathodes in all-solid-state batteries 🧑‍🔬⚡
  6. Unraveling electrochemo-mechanical aspects of core-shell composite cathode for sulfide based all-solid-state batteries 🔋🔧

Srinivas Dharavath | Energetic MAterials | Best Researcher Award

Assoc. Prof. Dr. Srinivas Dharavath | Energetic MAterials | Best Researcher Award

Associate Professor, IIT Kanpur, India

Dr. Srinivas Dharavath is an Assistant Professor in the Department of Chemistry at IIT Kanpur, India. His research interests span the development of green high-energy density materials, hypergolic oxidizers, polyiodo compounds, and small molecules for biological activity. He holds a Ph.D. from the University of Hyderabad, where his work focused on the design and synthesis of nitrogen-rich heterocyclic compounds as energetic materials. With extensive experience in energetic materials research, Dr. Dharavath has worked at prestigious institutions, including McMaster University (Canada) and the University of Idaho (USA). He is passionate about chemistry and advancing the synthesis of new compounds for various applications, including propellants and biological activity. In addition to his academic work, Dr. Dharavath enjoys walking and playing badminton in his free time.

Education

Dr. Dharavath earned his Ph.D. in Chemistry from the University of Hyderabad (2014), specializing in nitrogen-rich heterocyclic compounds and energetic materials under the guidance of Prof. Krishnamurthy Muralidharan. His thesis work contributed to the design and synthesis of compounds aimed at high energy applications. Prior to this, he completed his Master of Science (2009) and Bachelor of Science (2006) at Osmania University, Hyderabad. His education laid the foundation for his expertise in energetic materials, which has been further honed during his postdoctoral experiences. These include his time at McMaster University, University of Idaho, and University of Hyderabad, which provided him with diverse research exposure and an advanced skill set in chemical synthesis and materials development.

Profile

Experience

Dr. Srinivas Dharavath is currently an Assistant Professor at IIT Kanpur, where he has been serving since December 2019. Prior to this, he worked as a Postdoctoral Researcher at several prestigious institutions: McMaster University (Canada) from 2017-2019, University of Idaho (USA) from 2015-2017, and University of Hyderabad (India) in 2015. During his postdoctoral tenure, Dr. Dharavath focused on the development of energetic materials, including the design of nitrogen-rich compounds for airbag applications, propellants, and other high-energy materials. His work at IIT Kanpur focuses on green energetic materials and high-performance compounds for various industrial applications. His broad research experience across different international settings has helped establish him as a leading expert in the synthesis and study of energetic materials.

Awards and Honors

Dr. Dharavath has received several prestigious accolades throughout his career. He was awarded the P.K. Kelkar Class of 1979 Research Fellowship in 2024 for his outstanding work in the field. In 2014, he received the Dr. K. V. Rao Young Scientist Award in recognition of his contribution to the chemistry of energetic materials. He has also served as a guest editor for a special issue on energetic materials in the Journal of Heterocyclic Chemistry and is an Editorial Board member of Energetic Materials Frontiers. His research has been supported by numerous grants, including the SERB-SRG Grant, DRDO-ARMREB Grant, and the ISRO Grant. His ability to secure research funding is a testament to the quality and significance of his work.

Research Focus

Dr. Dharavath’s research focuses on the synthesis and development of high-energy-density materials, with a particular emphasis on green and environmentally friendly energetic compounds. He is deeply interested in designing hypergolic oxidizers and fuels for advanced propellants and pyrotechnics. His research also explores the use of polyiodo compounds as agent defeat weapons and the development of nitrogen-rich molecules for airbag applications. Dr. Dharavath is committed to designing and synthesizing materials with fine-tuned properties to maximize performance and safety in a range of industrial applications. His work contributes to the growing need for sustainable and efficient energetic materials.

Publications

  • Energetic Salts Based on 3, 5-Bis (dinitromethyl)-1, 2, 4-triazole Monoanion and Dianion: Controllable Preparation, Characterization, and High Performance 🔬
  • 5-(Dinitromethyl)-3-(trinitromethyl)-1,2,4-triazole and Its Derivatives: A New Application of Oxidative Nitration Towards Gem-trinitro-based Energetic Materials 🧪
  • Synthesis of nitrogen-rich imidazole, 1, 2, 4-triazole, and tetrazole-based compounds 🧬
  • Promising Thermally Stable Energetic Materials with the Combination of Pyrazole–1, 3, 4-Oxadiazole and Pyrazole–1, 2, 4-Triazole Backbones 🔥
  • Tetraanionic Nitrogen‐Rich Tetrazole‐Based Energetic Salts 💥
  • Synthesis of Amino, Azido, Nitro, and Nitrogen‐Rich Azole‐Substituted Derivatives of 1H‐Benzotriazole for High‐Energy Materials Applications 🌟
  • Facile Fabrication of Functionalized Pyrimidine Derivatives: Constructing a New Family of High-Performance and Less Sensitive Energetic Compounds ⚡
  • Bridged Bisnitramide-Substituted Furazan-based Energetic Materials 🔥
  • Genetic and Chemical Screening in Human Blood Serum Reveals Unique Antibacterial Targets and Compounds Against Klebsiella pneumoniae 🧫
  • Facile Synthesis of Nitroamino-1, 3, 4-Oxadiazole with Azo Linkage: A New Family of High-Performance and Biosafe Energetic Materials 🧪
  • Nitramino- and Dinitromethyl-Substituted 1,2,4-Triazole Derivatives as High-Performance Energetic Materials 🔬
  • Correction: From FOX-7 to H-FOX to Insensitive Energetic Materials with Hypergolic Properties 🚀
  • High-Performing, Insensitive and Thermally Stable Energetic Materials from Zwitterionic Gem-Dinitromethyl Substituted C–C Bonded 1, 2, 4-Triazole and 1, 3, 4-Oxadiazole 🔥
  • Unfolding the Chemistry of FOX-7: Unique Energetic Material and Precursor with Numerous Possibilities 💥
  • 1,3,5-Tris[(2H-Tetrazol-5-yl)methyl]Isocyanurate and Its Tricationic Salts as Thermostable and Insensitive Energetic Materials ⚗️
  • Energetic Salts Prepared from Phenolate Derivatives 💥
  • Dianionic Nitrogen-Rich Triazole and Tetrazole-Based Energetic Salts: Synthesis and Detonation Performance 💣
  • Taming of Tetranitroethane: A Promising Precursor to High-Performance Energetic Ingredients 💥
  • A Safer Synthesis of 3,5-Bis(Dinitromethyl)-1,2,4-Triazole (BDT) and Its Mono and Di Salts: High-Performance Insensitive Energetic Materials 💡
  • Zwitterionic Fused Pyrazolo-Triazole Based High-Performing Energetic Materials 🧨

Qihang Li | Mining Engineering | Best Researcher Award

Dr. Qihang Li | Mining Engineering | Best Researcher Award

Ph.D at Chongqing University, China

Qihang Li is a doctoral candidate at Chongqing University, specializing in geotechnical engineering with a focus on slope stability and salt cavern energy storage. He has made significant contributions to the fields of mining and slope engineering, authoring 35 research papers, obtaining 14 patents, and securing 10 software copyrights. Additionally, he has written one monograph and contributed to 10 ongoing research projects. He has been instrumental in pioneering new methods for assessing slope stability and energy storage techniques. His work has led to industry collaborations, with Qihang managing multiple geotechnical projects. 🌍📚🔬

Pofile

scopus

Education 🎓📖🔧

Qihang Li is pursuing a Ph.D. in Engineering at Chongqing University, where he is focusing on slope stability and salt cavern energy storage. He holds a Master’s degree in Geotechnical Engineering from the same institution. His academic journey has been characterized by a commitment to bridging theory with practical applications in geotechnical engineering, particularly in mining engineering and energy storage. He completed his undergraduate studies in civil engineering, which laid the foundation for his advanced research in slope stability and underground energy systems.

Experience 🔧💼📈

With a rich academic background, Qihang Li has gained substantial experience in geotechnical engineering. His work includes over 10 completed and ongoing research projects focused on slope engineering and energy storage systems. He has published extensively in prominent journals, contributing 35 articles to SCI and Scopus-indexed journals. In addition to his academic achievements, Qihang has actively participated in five industry-sponsored consultancy projects. His expertise also extends to patent development, with 14 patents and 10 software copyrights to his name. Qihang has served as an editor for “The Global Environmental Engineers” journal and has collaborated with 8 professionals in the field.

Awards and Honors 🏅🏆🎖

Qihang Li has received multiple accolades for his innovative contributions to geotechnical engineering. His research has been recognized for its impact on mining engineering, slope stability, and energy storage. He has been honored with awards from both academic and industry sectors, including recognition for his published papers and patented inventions. His innovative use of image recognition technology for slope stability prediction and his numerical simulation studies on salt cavern energy storage have been highly acclaimed. Additionally, Qihang’s collaboration with professionals across various disciplines has earned him considerable respect within the field.

Research Focus 🔬⚒️💡

Qihang Li’s research focuses on geotechnical engineering, specifically slope stability and salt cavern energy storage. His innovative approaches include using image recognition technology to predict slope stability after excavation and rainfall, as well as numerical simulations for assessing the stability of salt cavern energy storage systems. He is also involved in feasibility studies on gas storage through sediment voids. His work integrates theoretical models with real-world applications, bridging the gap between academic research and practical engineering solutions. By focusing on these critical areas, Qihang is advancing geotechnical engineering and contributing to the safe and efficient use of underground spaces for energy storage and environmental protection.

Publications

“Numerical Simulation of Overburden Deformation Mechanism and Surface Settlement Characteristics Induced by Underground Coal Mining: A Case Study”
Authors: Qihang Li, Yunmin Wang, Jiawen Wang, Bin Gong, Xiaoshuang Li
Published in Geological Journal, 2025
Citations: 0

“Evolutionary Characteristics of the Fracture Network in Rock Slopes Under the Combined Influence of Rainfall and Excavation”
Authors: Qihang Li, Yunmin Wang, Xiaoshuang Li, Bin Gong, Song Jiang
Published in Bulletin of Engineering Geology and the Environment, 2025
Citations: 0

“Comprehensive Safety Assessment of Two-Well-Horizontal Caverns with Sediment Space for Compressed Air Energy Storage in Low-Grade Salt Rocks”
Authors: Qihang Li, Wei Liu, Liangliang Jiang, Jifang Wan, Xuanshi Zhu
Published in Journal of Energy Storage, 2024
Citations: 0

Conclusion

Dr. Qihang Li’s work in geotechnical and mining engineering stands out for its scientific rigor, practical application, and innovative approaches. His notable achievements in research, patents, and industry collaborations position him as an ideal candidate for the Best Researcher Award. By further expanding his interdisciplinary collaborations and sustainability-focused research, he has the potential to shape the future of mining engineering and geotechnical research. His recognition would be a testament to his outstanding contributions to the field.

Huajie Luo | Functional materials | Best Researcher Award

Assoc. Prof. Dr Huajie Luo | Functional materials | Best Researcher Award

Scientific researcher at University of science and technology Beijing, China

👨‍🔬 Huajie Luo (b. 1991, Beijing) is an Associate Professor at the University of Science and Technology Beijing (USTB). He specializes in materials science, particularly in the design and performance regulation of ferroelectric ceramics and thin films. His work bridges atomic structures with macroscopic properties like energy storage and electrostrain. Luo has published extensively in top-tier journals and holds multiple patents. He is known for applying advanced techniques like synchrotron XRD and neutron diffraction to study crystal structures. 🌍📚

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Education🎓

Huajie Luo earned a Master’s and Ph.D. in Physical Chemistry from the University of Science and Technology Beijing (USTB), where he also completed his postdoctoral research. His doctoral research focused on ferroelectric materials and structure-property relationships. His expertise spans from theoretical modeling to experimental synthesis. 🌟

Experience💼

Luo is currently an Associate Professor at USTB (since 2023) and was a postdoctoral researcher at USTB’s Department of Physical Chemistry (2022-2023). He has participated in significant national research projects and supervised multiple funded initiatives. His broad expertise includes advanced material characterization and design for high-performance devices. 🔬⚙️

Awards and Honors🏅 

Luo has received numerous accolades, including selection for the Postdoctoral Innovative Talent Program and the 2024 Outstanding Postdoctoral Award from USTB. He also earned the 2024 Wiley China High Contribution Author Award and serves on the Youth Editorial Board of Microstructures. 🏆📑

Research Focus🔬

Luo’s research focuses on the design and performance of ferroelectric ceramics and thin films, particularly their macroscopic properties such as electrostrain and energy storage. He uses advanced techniques like synchrotron XRD and neutron diffraction for structural analysis. His work aims to enhance energy storage efficiency and piezoelectric performance. ⚡🧪

Publications

“Chemical design of Pb-free relaxors for giant capacitive energy storage”
Authors: H. Liu, Z. Sun, J. Zhang, et al.
Journal of the American Chemical Society, 145 (21), 11764-11772, 2023

Focuses on the chemical design of lead-free relaxors for large capacitive energy storage.

“Superior capacitive energy-storage performance in Pb-free relaxors with a simple chemical composition”
Authors: Z. Sun, J. Zhang, H. Luo, et al.
Journal of the American Chemical Society, 145 (11), 6194-6202, 2023

Explores the capacitive energy storage performance in Pb-free relaxors with a simplified chemical structure.

“Achieving giant electrostrain of above 1% in (Bi,Na)TiO3-based lead-free piezoelectrics via introducing oxygen-defect composition”
Authors: H. Luo, H. Liu, H. Huang, et al.
Science Advances, 9 (5), eade7078, 2023

Focuses on achieving large electrostrain in (Bi,Na)TiO3-based piezoelectrics with oxygen-defect composition.

“Simultaneously enhancing piezoelectric performance and thermal depolarization in lead-free (Bi, Na) TiO3-BaTiO3 via introducing oxygen-defect perovskites”
Authors: H. Luo, H. Liu, S. Deng, et al.
Acta Materialia, 208, 116711, 2021

Investigates the enhancement of piezoelectric and thermal depolarization properties in (Bi, Na) TiO3-BaTiO3 ceramics.

“Local chemical clustering enabled ultrahigh capacitive energy storage in Pb-free relaxors”
Authors: H. Liu, Z. Sun, J. Zhang, et al.
Journal of the American Chemical Society, 145 (35), 19396-19404, 2023

Highlights the role of local chemical clustering in enhancing energy storage performance in Pb-free relaxors.

Conclusion

In conclusion, Huajie Luo exemplifies the qualities sought after in a Best Researcher Award recipient—exceptional academic productivity, innovative research, and a clear impact on the scientific community. His continued success in both academic and industrial collaborations will likely yield even more groundbreaking results, making him a strong contender for this prestigious award.

Søren Taverniers | Mechanics of Functional Materials | Best Researcher Award

Dr. Søren Taverniers | Mechanics of Functional Materials | Best Researcher Award

Research Scientist at Stanford University, United States

Dr. Sorentav is a computational scientist specializing in energy science and engineering. With expertise in neural networks, physics-informed machine learning, and computational fluid dynamics, he has contributed significantly to advancing numerical modeling techniques. His research focuses on shock physics, subsurface flows, additive manufacturing, and uncertainty quantification. He has developed innovative computational frameworks for high-fidelity simulations and accelerated engineering applications. Dr. Sorentav has published in leading scientific journals, reviewed research papers, and supervised students and interns. His interdisciplinary approach bridges machine learning with physics-based simulations, enhancing predictive accuracy in various domains. He is proficient in multiple programming languages, including Python, C++, MATLAB, and OpenFOAM, and has a strong background in Unix/Linux environments. Through collaborations with academic institutions and industry, he has contributed to cutting-edge projects in materials science, energy systems, and computational mechanics.

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Education 

Dr. Sorentav holds a Ph.D. in Computational Science from the University of California, San Diego (UCSD), where he developed novel numerical techniques for solving complex physics-informed problems in energy and material sciences. His doctoral research focused on advancing simulation accuracy for multiphysics systems, particularly in shock-particle interactions and uncertainty quantification. Prior to his Ph.D., he earned a Master’s degree in Computational Science from UCSD, specializing in physics-informed neural networks and high-performance computing. He also holds a Bachelor’s degree from Katholieke Universiteit Leuven, where he built a solid foundation in applied mathematics, fluid dynamics, and numerical modeling. Throughout his academic career, Dr. Sorentav has received multiple awards for research excellence, including recognition for his Ph.D. dissertation. His education has equipped him with expertise in Monte Carlo simulations, finite difference/volume methods, and applied probability, which he integrates into cutting-edge computational science applications.

Experience

Dr. Sorentav has extensive experience in computational modeling, numerical methods, and physics-informed machine learning. He has worked on developing and validating high-fidelity simulations for energy applications, materials science, and shock physics. His research contributions include designing neural network architectures for scientific computing, implementing uncertainty quantification methods, and improving computational efficiency in large-scale simulations. Dr. Sorentav has collaborated with leading institutions, including Stanford University and UCSD, to accelerate computational model development for industrial and research applications. He has also contributed to proposal writing, conference presentations, and peer-reviewed journal publications. His technical expertise spans various software tools, including PyTorch, OpenFOAM, MATLAB, FEniCS, and Mathematica. Additionally, he has experience supervising student research projects, mentoring interns, and leading interdisciplinary teams. His work integrates applied probability, numerical analysis, and machine learning to address challenges in subsurface flows, additive manufacturing, and compressible fluid dynamics.

Publications

Graph-Informed Neural Networks & Machine Learning in Multiscale Physics

Graph-informed neural networks (GINNs) for multiscale physics ([J. Comput. Phys., 2021, 33 citations])

Mutual information for explainable deep learning in multiscale systems ([J. Comput. Phys., 2021, 15 citations])

Machine-learning-based multi-scale modeling for shock-particle interactions ([Bulletin of the APS, 2019, 1 citation])

These papers focus on integrating neural networks into multiscale physics, leveraging explainability techniques, and improving shock-particle simulations through ML.

2. Monte Carlo Methods & Uncertainty Quantification

Estimation of distributions via multilevel Monte Carlo with stratified sampling ([J. Comput. Phys., 2020, 32 citations])

Accelerated multilevel Monte Carlo with kernel-based smoothing and Latinized stratification ([Water Resour. Res., 2020, 19 citations])

Impact of parametric uncertainty on energy deposition in irradiated brain tumors ([J. Comput. Phys., 2017, 4 citations])

This work revolves around Monte Carlo methods, uncertainty quantification, and their applications in medical physics and complex simulations.

3. Stochastic & Hybrid Models in Nonlinear Systems

Noise propagation in hybrid models of nonlinear systems ([J. Comput. Phys., 2014, 16 citations])

Conservative tightly-coupled stochastic simulations in multiscale systems ([J. Comput. Phys., 2016, 9 citations])

A tightly-coupled domain decomposition approach for stochastic multiphysics ([J. Comput. Phys., 2017, 8 citations])

This research contributes to computational physics, specifically in stochastic and hybrid system modeling.

4. Computational Fluid Dynamics (CFD) & Shock-Wave Interactions

Two-way coupled Cloud-In-Cell modeling for non-isothermal particle-laden flows ([J. Comput. Phys., 2019, 7 citations])

Multi-scale simulation of shock waves and particle clouds ([Int. Symp. Shock Waves, 2019, 1 citation])

Inverse asymptotic treatment for capturing discontinuities in fluid flows ([J. Comput. Sci., 2023, 2 citations])

S. Taverniers has significantly contributed to shock-wave interaction modeling, with applications in aerodynamics and particle-fluid interactions.

5. Computational Plasma & Dielectric Breakdown Modeling

2D particle-in-cell modeling of dielectric insulator breakdown ([IEEE Conf. Plasma Science, 2009, 11 citations])

This early work focuses on plasma physics and dielectric breakdown simulations.

6. Nozzle Flow & Additive Manufacturing Simulations

Finite element methods for microfluidic nozzle oscillations ([arXiv, 2023])

Accelerating part-scale simulations in liquid metal jet additive manufacturing ([arXiv, 2022])

Modeling of liquid-gas meniscus dynamics in arbitrary nozzle geometries (US Patent, 2024)

Conclusion

Based on their remarkable academic achievements, innovative research, and ability to collaborate effectively across disciplines, this candidate is highly deserving of the Best Researcher Award. However, by broadening their industrial collaborations, increasing their research visibility, and considering the wider impact of their work, they could elevate their research contributions even further, making an even greater impact on both academia and industry.

 

Camelia CERBU | Wood composites | Best Researcher Award

Prof. Dr. Camelia CERBU | Wood composites | Best Researcher Award

Prof. dr. eng, Transilvania University of Brasov, Romania

Camelia Cerbu is a professor at Transilvania University of Brașov, specializing in the mechanics of composite materials. With a PhD in Mechanical Engineering and extensive research in structural optimization, she has contributed significantly to material strength, elasticity, and plasticity. As a PhD supervisor and research center coordinator, she mentors students in advanced mechanical studies. Her expertise extends to environmental effects on composite materials, finite element analysis, and experimental stress analysis. She has led multiple research projects on hybrid and nano-composite structures under extreme conditions.

Pofile

scopus

Education 🎓📖

PhD in Mechanical Engineering, Transilvania University of Brașov (1999-2005) Master’s in Computer Assisted Technological Engineering, Transilvania University of Brașov (1996-1997) Engineering degree in Machine Building Technology, Transilvania University of Brașov (1991-1996) Postgraduate training in blended-learning & educational technologies (2014) Habilitation in Mechanical Engineering (2015) High school diploma in Mathematics-Physics, “Radu Negru” National College, Făgăraș (1987-1991)

Experience 🏫🔧

Professor, Transilvania University of Brașov (2016-present) Associate Professor, Transilvania University of Brașov (2007-2016) University Lecturer, Transilvania University of Brașov (2002-2007) University Assistant, Transilvania University of Brașov (2000-2002) Engineer, I.U.S. S.A. Brașov, Hand Tools Factory (1997-2000) Engineer, Automotive Institute of Brașov – I.N.A.R. (1996-1997) PhD Supervisor, Doctoral School of Transilvania University of Brașov (2015-present)

Awards & Honors 🏆🎖

Coordinator of the Research Centre “Numerical Simulation, Testing and Mechanics of Composite Materials” Project leader of multiple national research grants on composite and nano-composite materials Recognized for contributions to strength analysis of hybrid composites under aggressive environmental conditions Habilitation in Mechanical Engineering, attesting expertise in modeling and testing of reinforced composite structures Professional skills certification in blended-learning technologies (2014) Top graduate in Machine Building Technology with an average grade of 9.83/10 PhD diploma awarded for outstanding research in composite material optimization

Research Focus 🔬📊

Strength, elasticity, and plasticity of isotropic and anisotropic materials Analysis of stress and strain fields in mechanical structures (analytical & FEM methods) Experimental mechanical characterization of composite and isotropic materials Environmental effects (moisture, temperature, thermal cycles) on composite materials

Publications

Works in Polymers (2025) on acoustic/mechanical characterization of PVA wood composites, Materials (2025) on 3D-printed furniture joints, and Materials (2024) on rubber-core composite behavior under impact loading.

Conclusion

Dr. Camelia Cerbu is an outstanding candidate for the Best Researcher Award. With a strong academic and research background in composite materials, significant project leadership, and contributions to mechanical engineering, she has demonstrated excellence in both theoretical and applied research. Strengthening global collaborations and industry engagement could further solidify her position as a leading expert in the field.

Quanming Yao | Graph Data Mining | Best Researcher Award

Dr. Quanming Yao | Graph Data Mining | Best Researcher Award

Assistant Professor, Department of Electronic Engineering, Tsinghua University, China

Short Biography (150 words): Quanming Yao (姚权铭) is an Assistant Professor in the Department of Electronic Engineering at Tsinghua University. A renowned machine learning researcher, Yao has focused on parsimonious deep learning, driving innovation by using knowledge-driven approaches rather than scaling laws. He developed automated graph learning methods that secured 1st place in the Open Graph Benchmark and led to the commercialization of these methods by AI unicorn 4Paradigm. His work on Drug-Drug Interaction (DDI) prediction in Nature Computational Science revolutionized the field with interpretable deep learning models. Yao is the co-founder of Kongfoo Technology, a synthetic biology startup. He has received several prestigious awards, including the Forbes 30 Under 30 and Google Fellowship. With over 100 publications and an h-index of 36, Yao is recognized globally for his contributions to machine learning and AI research.

Pofile

Education 

Quanming Yao holds a Ph.D. in Computer Science and Engineering from the Hong Kong University of Science and Technology (HKUST), which he completed between September 2013 and June 2018. His academic journey began with a Bachelor’s degree in Electronic and Information Engineering from HuaZhong University of Science and Technology (HZUST), where he studied from September 2009 to June 2013. Yao’s academic training laid the foundation for his groundbreaking research in machine learning, particularly in parsimonious deep learning and graph learning. His research during his doctoral studies focused on machine learning theory and its practical applications, culminating in innovative methods that have since impacted both academia and industry. His doctoral research was recognized with prestigious awards, including the Google Ph.D. Fellowship in 2016. Yao’s commitment to excellence in his studies has contributed significantly to his reputation as a rising star in the field of AI and machine learning.

Experience 

Quanming Yao’s professional experience spans both academia and industry. Since 2021, he has served as an Assistant Professor at Tsinghua University’s Department of Electronic Engineering, where he also mentors Ph.D. students. Before joining Tsinghua, Yao worked as a Senior Scientist at 4Paradigm Inc., a leading AI company based in Hong Kong, from June 2018 to May 2021. At 4Paradigm, Yao was involved in research and product development, specifically developing automated graph learning techniques that have been commercialized in the company’s products. Yao’s expertise extends to multiple domains, including drug discovery, where his work on Drug-Drug Interaction prediction has led to a new approach in biomedical research. Additionally, Yao co-founded Kongfoo Technology, a synthetic biology startup, demonstrating his ability to apply AI in real-world applications. His work is frequently cited in leading journals and conferences, making him a significant contributor to machine learning research globally.

Awards and Honors 

Quanming Yao’s outstanding contributions to machine learning have earned him numerous prestigious awards. In 2024, he received the inaugural Intech Prize from Ant Group, recognizing him as one of the most outstanding young scholars in computer science. He was also named in the Forbes 30 Under 30 list for Science & Healthcare in China in 2020, highlighting his achievements in AI and technology. Yao has been recognized as a “Global Top Chinese New Star in Machine Learning” since 2022 and has received the Aharon Katzir Young Investigator Award in 2023. He was also selected for the National Young Talents Project in 2020, a high-level recognition for young scientists in China. Other accolades include the Wuwen Jun Prize for Excellence in AI, the Google Ph.D. Fellowship in Machine Learning, and the Young Scientist Award in Hong Kong. These honors reflect Yao’s remarkable impact in AI research and innovation.

Research Focus

Quanming Yao’s research primarily focuses on parsimonious deep learning, where he aims to achieve impressive results with minimal complexity. His work emphasizes knowledge-driven solutions, challenging traditional scaling laws that often drive deep learning innovation. Yao has made significant strides in developing automated graph learning methods, which have been highly successful, including securing 1st place in the Open Graph Benchmark. His groundbreaking work on interpretable Drug-Drug Interaction (DDI) prediction, as published in Nature Computational Science, stands as a prime example of his approach to making deep learning methods more accessible and applicable to real-world problems, such as drug discovery. Yao also explores novel methods like low-rank tensor learning with nonconvex regularization, improving the speed and efficiency of machine learning optimization processes. His research has wide-ranging implications, from graph learning and drug interaction prediction to broader AI applications, showcasing his ability to bridge theoretical and practical advancements in AI.

Publications

  • Emerging Drug Interaction Prediction Enabled by Flow-based Graph Neural Network with Biomedical Network 🧬 (Nature Computational Science, 2023)
  • AutoBLM: Bilinear Scoring Function Search for Knowledge Graph Learning 📊 (IEEE Transactions on Pattern Analysis and Machine Intelligence, 2022)
  • Efficient Low-rank Tensor Learning with Nonconvex Regularization 🔢 (Journal of Machine Learning Research, 2022)
  • Efficient Learning with Nonconvex Regularizers by Nonconvexity Redistribution 🔍 (Journal of Machine Learning Research, 2018)
  • Co-teaching: Robust Training Deep Neural Networks with Extremely Noisy Labels 🏷️ (NeurIPS, 2018)

Songlin Zhang | fiber devices | Young Scientist Award

Assoc. Prof. Dr. Songlin Zhang | fiber devices | Young Scientist Award

Professor, Fudan University, China

Dr. Songlin Zhang is an Associate Professor at the Department of Macromolecular Science, Fudan University, Shanghai, China. He holds a position in the State Key Laboratory of Molecular Engineering of Polymers and the Institute of Fiber Materials and Devices. Dr. Zhang has an extensive academic background, having worked as a Research Fellow at the National University of Singapore and as a Postdoctoral Researcher at UCLA. He received his Ph.D. from Florida State University, specializing in Polymer Nano Composites, and an MSc from Donghua University. His work focuses on fiber-based wearable technologies, polymer composites, and materials engineering. Dr. Zhang is highly recognized for his innovative research on soft fibers, stretchable electronics, and self-powered sensors. His research has direct implications for smart textiles, wearable electronics, and personal healthcare applications.

Profile

Education 

Dr. Songlin Zhang earned his Ph.D. in Industrial Engineering with a focus on Polymer Nano Composites from Florida State University in 2019. He also completed his MSc in Textile Materials and Design (Functional Textile Composites) at Donghua University, Shanghai, China, in 2015. His academic journey began with a Bachelor’s degree in Textile Engineering (Natural and Synthetic Fibers) from Southwest University, Chongqing, China, in 2012. Dr. Zhang’s education spans across diverse disciplines including bioengineering, materials science, and nanotechnology, combining knowledge of textiles, polymers, and nanocomposites. His postdoctoral training in bioengineering at UCLA and materials science at the National University of Singapore has significantly enriched his expertise, especially in soft functional fibers and wearable technologies. His academic foundation has prepared him for the challenges of developing cutting-edge materials and devices for various applications in health, robotics, and electronics.

Experience 

Dr. Songlin Zhang is an Associate Professor at Fudan University, where he leads research on wearable fiber sensor devices and polymer composites for personal health management. Before joining Fudan University in 2024, he was a Research Fellow at the National University of Singapore (2020-2023), where he invented a biomimetic spinning approach for soft fibers and explored silver-based polymer composites. Dr. Zhang also worked as a Postdoctoral Researcher at UCLA in 2019, focusing on self-powering sensors for healthcare applications. His previous research at Florida State University (2015-2019) included developing advanced carbon nanotube-based composite fibers with improved mechanical and electrical properties for applications in aerospace and robotics. He has also contributed to projects at the National High Magnetic Field Laboratory, analyzing nanocomposites with advanced microscopy techniques. Dr. Zhang’s experience spans diverse areas, from energy harvesting to smart textiles, strengthening his position as a leading researcher in material science.

Awards and Honors 

Dr. Songlin Zhang has been recognized for his groundbreaking work in materials science and engineering. His innovations in the field of wearable electronics and soft functional fibers have earned him numerous accolades, including highly cited publications in prestigious journals. In addition to academic recognition, Dr. Zhang’s research in energy-efficient materials and self-powered sensors has been acknowledged in international awards and conferences. His work on triboelectric nanogenerators and advanced carbon nanotube composites has garnered attention in the engineering community. Dr. Zhang’s contributions to wearable technology and bioengineering have resulted in him being featured in notable scientific publications. His continuous pursuit of novel, sustainable approaches in material science has positioned him as a leader in his field. He also serves as an advisor for various graduate students, contributing to the development of the next generation of researchers.

Research Focus

Dr. Songlin Zhang’s research focuses on the development of novel materials for wearable technologies, particularly wearable sensors, flexible polymer composites, and smart textiles. His primary interests include enhancing the interface stability between sensing components and flexible substrates, which is crucial for reliable performance in wearable devices. He is known for inventing a biomimetic spinning approach that fabricates functional soft fibers with low energy consumption and minimal solvent use. His work also emphasizes integrating mechanical and electrical properties into single materials, which is crucial for self-sensing soft robots and wearable electronics. Dr. Zhang’s research also spans into energy harvesting, particularly through triboelectric nanogenerators, and developing self-powered systems for healthcare monitoring. He investigates the use of carbon nanotubes, silver-based complexes, and elastomers to enhance the mechanical strength, stretchability, and electrical conductivity of materials. His work directly addresses challenges in creating sustainable, cost-effective solutions for smart devices and personal health applications.

Publications 

  1. Sign-to-speech translation using machine-learning-assisted stretchable sensor arrays 🧠📱
  2. A wireless textile-based sensor system for self-powered personalized health care 👕🔋
  3. Muscle fibers inspired high‐performance piezoelectric textiles for wearable physiological monitoring 💪📊
  4. Alveolus-inspired active membrane sensors for self-powered wearable chemical sensing and breath analysis 🌬️🩺
  5. Single-layered ultra-soft washable smart textiles for all-around ballistocardiograph, respiration, and posture monitoring during sleep 😴🩻
  6. Leveraging triboelectric nanogenerators for bioengineering ⚡🧬
  7. A linear-to-rotary hybrid nanogenerator for high-performance wearable biomechanical energy harvesting 🔄⚡
  8. Thermogalvanic hydrogel for synchronous evaporative cooling and low-grade heat energy harvesting 🌡️💧
  9. Promoting energy efficiency via a self‐adaptive evaporative cooling hydrogel 💨🌀
  10. Repurposing face mask waste to construct floating photothermal evaporator for autonomous solar ocean farming 🏝️♻️
  11. Biomimetic spinning of soft functional fibres via spontaneous phase separation 🧵🔬
  12. Carbon nanotube/carbon composite fiber with improved strength and electrical conductivity via interface engineering 🔩⚡
  13. Carbon‐nanotube‐based electrical conductors: fabrication, optimization, and applications 🏗️🔋
  14. Ternary electrification layered architecture for high-performance triboelectric nanogenerators ⚡🌟
  15. Electrical and thermal conductivity improvement of carbon nanotube and silver composites 🧊🔌
  16. MXene functionalized, highly breathable and sensitive pressure sensors with multi‐layered porous structure 🧩🎯
  17. Carbon nanotube reinforced strong carbon matrix composites 🔨🧲
  18. Step-by-Step Strategy for Constructing Multilayer Structured Coatings toward High-Efficiency Electromagnetic Interference Shielding 🛡️⚡
  19. Ambient-conditions spinning of functional soft fibers via engineering molecular chain networks and phase separation 🧵🌍
  20. Superhydrophobization of cotton fabric with multiwalled carbon nanotubes for durable electromagnetic interference shielding 🧴🧶