Tran Trung Luu is an Assistant Professor at the Department of Physics , Faculty of Science , The University of Hong Kong . He earned his B.Sc. from Vietnam National University (2007), M.Sc. from Korea Advanced Institute of Science and Technology (2010), and Ph.D. from Ludwig-Maximilians-Universität München (2015). Currently, he leads research in Ultrafast Optics , Strong-Field Laser Physics , and Attosecond Science , with a focus on probing coherent lattice vibrations and electron-phonon coupling in solids using high-harmonic spectroscopy. Education: B.Sc. in Physics, Vietnam National University (2007) M.Sc. in Physics, Korea Advanced Institute of Science and Technology (2010) Ph.D. in Physics, Ludwig-Maximilians-Universität München (2015) Research Interests revolve around Ultrafast Optics and Strong-Field Laser Physics , particularly Attosecond Science applications in condensed matter. His work bridges Nonlinear Spectroscopy with Quantum Dynamics in Solids , utilizing High-Harmonic Generation to study Electron-Phonon Coupling and Anharmonic Phonon Scattering . Publications highlight trends in Coherent Lattice Dynamics , Time-Resolved Photoelectron Spectroscopy , and Optical Manipulation of Bandgaps . Scientific Awards include the ISUILS Young Researcher Award (2015) and an ETH Postdoctoral Fellowship (2015) . As a Principal Investigator , he has secured grants such as RGC ECS project 27300820 and GRF project 17315722 , totaling over HKD 2,819,760. He actively supervises PhD and MPhil students in Ultrafast Optics projects and contributes to invited lectures on Attosecond Science at institutions like Phenikaa University and ETH Zurich.
Dr. Krešimir Molčanov is a Senior Scientist at the Ruđer Bošković Institute in Zagreb, Croatia, working within the Division of Physical Chemistry, Laboratory for chemical and biological crystallography. He maintains a dual academic role as an educator at the Department of Chemistry, Faculty of Science, University of Zagreb, where he teaches specialized courses in crystallography and general chemistry. Dr. Molčanov's educational background includes primary education at Ivan Gundulić school in Zagreb (1985-1993), secondary education at II. gimnazija high school in Zagreb (1993-1997), undergraduate studies in Chemistry at the University of Zagreb (1997-2002), and doctoral studies in Inorganic and Structural Chemistry at the same institution (2003-2008). His research primarily focuses on chemical crystallography with special emphasis on radical systems, particularly semiquinone radicals and their electronic properties. Dr. Molčanov investigates the relationship between crystal structure and functionality, with applications in magnetic materials, conductivity, and proton transport. A recurring theme throughout his career is the investigation of 'pancake bonding' - a special type of multicenter bonding in radical systems that bridges the gap between covalent and intermolecular interactions. His work increasingly incorporates quantum crystallographic methods to understand electron density distribution in complex systems. Analysis of Dr. Molčanov's publication record shows consistent evolution from fundamental hydrogen bonding studies toward advanced applications in functional materials. His most recent work (2023-2025) demonstrates sophisticated integration of experimental crystallography with electronic structure analysis, particularly in systems involving radical anions and multicenter bonding. The recurring themes across his publications include π-stacking interactions, charge transfer phenomena, and the design of materials with tailored electronic properties. Dr. Molčanov has led multiple research projects funded by the Croatian Science Foundation and Croatian Academy of Sciences and Arts. His leadership roles include projects on metal-organic systems based on oxalate and quinoid ligands, interactions of semiquinone radicals for magnetic materials, and design of functional materials based on quinoid rings. He has coordinated international collaborations with researchers from France, Slovenia, and India, focusing on crystallographic studies and materials design. Within the Laboratory for chemical and biological crystallography at the Ruđer Bošković Institute, Dr. Molčanov maintains close collaboration with multiple research teams, including the long-standing partnership with Dr. Biserka Kojić-Prodić (his PhD supervisor). His interdisciplinary approach spans chemistry, physics, and materials science, with particular emphasis on the structural basis of electronic properties in solid-state systems.
Jun Wu is a Professor in the Department of Public Health at the University of California, Irvine. Her research focuses on air pollution exposure assessment and air pollution epidemiology, particularly in reproductive health, aiming to improve exposure characterization and assess health impacts. Ph.D. in Environmental Health from University of California, Los Angeles Her exposure assessment work employs geographical information systems (GIS), atmospheric dispersion models, and statistical techniques to quantify population and individual air pollution exposures, including studies on vehicle-related pollution, naphthalene, wildfires, and traffic pollutants. Her epidemiology research links air pollution to adverse pregnancy outcomes like preeclampsia, preterm births, and early pregnancy loss. The Google Scholar articles reflect interdisciplinary work in photonics, semiconductor devices, and optical systems, featuring advancements in microwave photonic oscillators, photodiodes, and color-tunable organic light-emitting diodes. These studies emphasize low phase noise, thermal dissipation, and high-efficiency device design across microwave and optoelectronic domains. Health Effect Institute Walter A. Rosenblith New Investigator Award, 2010 International Society of Exposure Analysis Young Investigator Award, 2005 Samuel J. Tibbitts Fellowship, School of Public Health, UCLA, 2003 Chancellor’s Fellowship, UCLA, 2000, 2003 PWEA Student Research Award, Pennsylvania Water Environment Association, 2000 Jun Wu's laboratory (https://drwulab.net/) develops exposure models and investigates environmental health impacts, combining GIS with atmospheric modeling. Her research bridges environmental science and public health, targeting pollution-related health risks.
Charles Wijayawardhana is an Adjunct Associate Professor affiliated with the Department of Physics, Chemistry and Biology (IFM) at Linköping University , specializing in Thin Film Physics (TUNNF) . His research focuses on advanced materials processing and thin film technologies, particularly silicon carbide coatings and chemical vapor deposition methods. Research Trends: Recent publications emphasize conformal/superconformal deposition techniques, crystal growth orientation control, and surface engineering of silicon carbide multilayers for high-performance applications.
Praveen Linga is a Professor in the Department of Chemical and Biomolecular Engineering at the National University of Singapore (NUS) , where he has served since 2010. He held leadership roles as Vice Dean (Industry-Relation, Innovation & Enterprise) and Vice Dean (Communications & Outreach) at NUS's College of Design and Engineering . Dr. Linga co-leads the Centre for Energy Research & Technology (CERT) at NUS and maintains visiting professorships at institutions in India, China, and Thailand. His research focuses on clathrate hydrates for clean energy storage , CO₂ capture , and environmental stewardship , aligning with UN Sustainable Development Goals 6, 7, and 13. The Linga Lab combines fundamental and applied studies to optimize hydrate formation/dissociation kinetics and explore energy recovery from natural gas hydrates. Recent publications highlight innovations in CO₂ hydrate kinetics using amino acid promoters, methane storage in seawater systems, and hydrogen hydrate stability analysis. His work appears in leading journals like Energy & Fuels , Applied Energy , and Chemical Engineering Journal , with over 200 peer-reviewed papers and significant citation impact (h-index 77). Dr. Linga is recognized as a Highly Cited Researcher (Clarivate, 2018-2024), NRF Investigator (S$3.5M grant), and recipient of multiple Best Paper Awards from Applied Energy and Advances in Applied Energy . He serves as Executive Editor of Energy & Fuels and sits on editorial boards of 12 journals. Linga Lab's work has been featured in global media (Chemistry World, Science et Vie) and recognized by Research.com as #9 in Singapore's engineering scientists. His research bridges chemical engineering fundamentals with large-scale energy applications, particularly in hydrate-based CO₂ sequestration and unconventional gas storage.
Dr Qiandong Zhuang is a Reader in Semiconductor Quantum Materials and Devices at the Physics Department of Lancaster University. He joined Lancaster University in 2003 after working as a Research Scientist at Singapore Nanyang Technological University and the University of Glasgow. At Lancaster, he established the MBE Laboratory and has been leading the Semiconductor Quantum Materials and Devices research group. His primary research focuses on semiconductor nanostructures and physics: MBE growth of compound semiconductor materials including arsenide, antimonide, dilute nitride and nitrides Quantum structures including quantum dots, quantum rings, nanowires and superlattice Droplet epitaxy of unique quantum dots including GaAs/AlGaAs and GaSb/AlGaSb QDs Semiconductor nanowires and integration with silicon and 2D materials Fundamental studies using HRXRD, photoluminescence, and electroluminescence Advanced optoelectronic devices including VCSELs, Lasers, LEDs, and photodetectors Dr Zhuang's current work emphasizes epitaxy of semiconductor quantum materials for photonic devices and laser-based spectroscopic technology for medical sensors and gas monitoring. His recent publications show strong trends in infrared photodetectors, semiconductor nanowires, and applications in medical sensing (particularly non-invasive glucose monitoring) and environmental monitoring. Dr Zhuang maintains extensive national and international collaborations with institutions including Nottingham University, Surrey University, Warwick University, Shanghai Institute of Technical Physics CAS, and University of Electronic Science and Technology of China. He has established industrial partnerships with Cascade Technologies Emerson, Lumentum, Gas Sensing Solutions Ltd, and CST Global. He actively supervises PhD students and welcomes researchers for postdoctoral positions. His major research projects include Horizon Europe's COMPAS, Drone-based air pollution mapping (SNIFFIRDRONE), and various VCSEL-based spectroscopy projects for non-invasive glucose monitoring. Dr Zhuang hosts academic visitors from China, India, and Russia, and encourages international collaborations in semiconductor quantum materials research.
Houman Zahedmanesh is an Associate Professor in the Department of Mechanical Engineering at KU Leuven's Faculty of Engineering Science. His work focuses on electromigration reliability in nano-interconnects, leveraging machine learning and AI to address thermal hotspots in semiconductor systems. He leads projects like the 2025-2029 BEOL thermal management initiative and contributes to computational materials science research. Current Affiliation: KU Leuven, Faculty of Engineering Science Department: Mechanical Engineering Research Focus: Electromigration, nano-interconnect reliability, AI-driven materials analysis Research Interests: Dr. Zahedmanesh's research bridges materials science and electrical engineering, with emphasis on: Electromigration-induced failure in copper interconnects Thermal gradient effects on electronic reliability Machine learning applications for predictive material modeling Microstructure-aware simulations in nanotechnology Hybrid physical-statistical frameworks for semiconductor reliability Publication Trends: Recent works demonstrate his expertise in AI-driven materials analysis (2025), microstructure modeling (2024), and multiphysics simulations of electromigration (2023). His research aligns with KU Leuven's focus on computational materials science and nanotechnology.
Dr. Wenjun Lu is an Associate Professor and Principal Investigator at Southern University of Science and Technology (SUSTech), with a focus on metallic materials design, advanced characterization, and mechanical property control. She completed her Ph.D. and B.Sc. at Imperial College London and served as a Postdoctoral Fellow at the Max Planck Institute for Steel Research under Dierk Raabe and Gerhard Dehm. Her research areas include: Metallic Materials Design and Additive Manufacturing Hydrogen Embrittlement and Corrosion Grain Boundary Engineering and Phase Transformation In-situ TEM and Spherical Aberration-Corrected STEM Key publication trends: Focus on lightweight steels, high-entropy alloys, and additive manufacturing Advanced characterization techniques (TEM/3D APT/Cryo-FIB) Mechanical behavior optimization through nanostructures Scientific Awards: Outstanding Young Scientist Award (2021) Top 2% Scientists in the World (2021) Outstanding Reviewer for Journal of Alloys and Compounds (2018) Research Leadership: National Natural Science Foundation of China (52371110) Ministry of Science and Technology Project (2022YFB4600700) Guangdong Provincial Fund (20231515011510)
Ron Peled is a Full Professor in the School of Mathematical Sciences at Tel Aviv University. Starting in summer 2024, he will serve as a Brin Professor in the Department of Mathematics at the University of Maryland, on leave from Tel Aviv University. During the 2022-2024 academic years, he visited Princeton University and the Institute for Advanced Study. His research spans multiple areas of probability theory and statistical physics, with significant contributions to understanding random surfaces, first-passage percolation, spin systems, and disordered models. Peled's research interests primarily focus on Probability Theory and Statistical Physics. His work examines the behavior of random systems, particularly in the presence of disorder or constraints. He has made significant contributions to understanding minimal surfaces in random environments, the structure of geodesics in first-passage percolation, phase transitions in spin systems, and the properties of random surfaces. His research often combines deep probabilistic insights with connections to statistical mechanics and mathematical physics, revealing universal behaviors in complex random systems. Analysis of Peled's recent publications reveals a strong focus on understanding the effects of disorder in statistical physics models. His work spans multiple domains including first-passage percolation, random surfaces, spin systems, and random matrix theory. A recurring theme is the investigation of how microscopic randomness affects macroscopic properties, with particular attention to phase transitions, correlation decay, and geometric structures emerging in random environments. His research often employs sophisticated probabilistic techniques combined with insights from statistical mechanics. Peled has received significant recognition through prestigious grants including multiple Israel Science Foundation grants (1048/11, 861/15, 1971/19, 2340/23), a Marie Skłodowska-Curie Actions International Reintegration Grant (SPTRF), an ERC Starting Grant (LocalOrder), and an ERC Consolidator Grant (Transitions). These awards reflect the importance and impact of his research in the mathematical community. Peled has supervised numerous students and postdocs throughout his career. His Ph.D. students include Daniel Hadas (joint with Wojciech Samotij) and Yinon Spinka (graduated August 2018). His Master's students include Michal Bassan (joint with Shoni Gilboa), Daniel Hadas, Yoav Bar Nir, Dor Elboim (who went on to do a Ph.D. at Princeton), Vital Kharash, Omri Cohen-Alloro, Alexey Gladkich, and Yinon Spinka. He has also mentored postdoctoral fellows including Lakshmi Priya, Paul Dario, Matan Harel, Raimundo Briceño, Alexander Glazman, Alexander Magazinov, Xiaolin Zeng, Nishant Chandgotia, Jeremiah Buckley, Wojciech Samotij, and Tom Ellis. Peled is actively involved in the academic community, serving as one of the organizers of the online Joint Israeli Probability Seminar and previously organizing the Horowitz Seminar on Probability, Ergodic Theory and Dynamical Systems. He has also organized several workshops and conferences including "Challenges in probability and statistical mechanics" at the Technion in 2022, the "Workshop on Strongly Correlated Random Interacting Processes" at Oberwolfach in 2018, and "Elegance in probability: A conference honoring Russell Lyons' 60'th birthday" at Tel Aviv University in 2017.
Xingjie Ni is an Associate Professor in the Electrical Engineering department at the Materials Research Institute (MRI) . With a focus on metasurface physics , photonics , and plasmonics , their research spans advanced optical technologies and computational imaging. Research Trends : Recent work explores metasurface design for achromatic lenses and light manipulation machine learning-enhanced polarimetric imaging with encoding metasurfaces ultrathin optical devices enabling geometric image transformations reconfigurable liquid crystal systems for dynamic photonic applications electrically tunable nonlinear optics for ensemble learning nanoscale fabrication techniques for scalable metalenses Grants & Projects : Active grants include NSF funding for Photonic Integrated Guided-Wave-Driven Metasurfaces NASA collaboration on Metalens Origami Deployable Lidar National Institute of Biomedical Imaging and Bioengineering support for Metasurface-Based Endoscope
Dr. Suhash Ranjan Dey is a Professor in the Department of Materials Science and Metallurgical Engineering at Indian Institute of Technology Hyderabad , India. He earned his Ph.D. in Materials Science and Physics from the University of Metz, France, and holds advanced degrees from IIT Kanpur and University of Delhi. His research focuses on advanced electrochemical materials processing for energy, biomedical, and sustainability applications. Key Research Areas: High Entropy Alloys/Oxides, CIGS/CZTS Solar Cells, Electrodeposition, Biomedical Devices, E-Waste Recycling, Hydrogen Production His research group specializes in synthesizing multi-component alloy thin films via non-vacuum electrochemical methods, with recent breakthroughs in one-dimensional nanostructures and bio-inspired hydrogels . He has secured over INR 3.5 crores in competitive research grants from agencies like DST, CSIR, and TATA Steel. Dr. Dey's publications (over 15 in last 3 years) span high entropy materials , perovskite solar cells , and electrochemical sensors . He serves as Associate Editor for Bulletin of Materials Science and maintains active collaborations with institutions in Germany, Japan, and China. Notable Awards: Humboldt Fellowship (Germany), BASE Fellowship (USA), IEI Young Engineers Award As department Head (2020-2023), he drove INR 6 crores in TEQIP funding. His laboratory (Room 304, MSME Block) houses state-of-the-art facilities for electrochemical synthesis and advanced materials characterization .
Professor David Gillespie is an Associate Professor of Engineering Science at the University of Oxford and Deputy Head of Department for New Buildings. He is also a Fellow of St Catherine's College and affiliated with the Oxford Thermofluids Institute. His research focuses on critical aspects of gas turbine and jet engine technology, particularly in thermal management and fluid dynamics applications. Professor Gillespie attended Jesus College Oxford as an undergraduate and obtained his doctorate in 1996. He has been the Rolls-Royce Fellow in Engineering Science since 2003, demonstrating a long-standing relationship with industry in advancing gas turbine technology. His primary research interests include: Development of advanced seals for jet engines and industrial gas turbines Tip clearance control mechanisms for gas turbines using thermal activation systems Heat exchanger design for intercoolers and recuperators in jet engines Engine-realistic internal cooling systems, including dendritic cooling and ribbed passages Effects of volcanic ash ingestion on engine components Advanced instrumentation methods using thermochromic liquid crystals and IR cameras Professor Gillespie's recent publication record shows a strong focus on ice crystal icing phenomena in turbomachinery, particle deposition in gas turbines, and advanced thermal management techniques. His work combines experimental, analytical, and computational approaches to address critical challenges in gas turbine operation under extreme conditions. A significant portion of his recent work involves the development of predictive models for ice accretion and particle deposition, which have important safety implications for aircraft engines. As a key member of the Oxford Thermofluids Institute, Professor Gillespie leads research that bridges fundamental fluid dynamics with practical engineering applications in the aerospace industry.
Dr. Shilpi Gupta is an Associate Professor in the Department of Electrical Engineering at the Indian Institute of Technology Kanpur (IITK). She holds a PhD from the University of Maryland College Park, where her thesis focused on room-temperature light-matter interactions using quantum dots and photonic crystal cavities under Dr. Edo Waks. She completed her B.Tech in Engineering Physics at IIT Delhi. Her research specializes in Nano-photonics , with core interests spanning photonics, plasmonics, quantum optics, and nanotechnology. She investigates light-matter interactions at nanoscales, quantum dot behaviors, and photonic crystal applications. Her recent publications emphasize quantum optics and nanophotonic systems, particularly exploring quantum dot lasers, emission enhancement, and nanofabrication techniques for photonic devices. These works reflect her focus on advancing optical technologies through nanomaterials and cavity-based systems. No awards, grants, or student advising details are mentioned in the source material. Laboratory affiliations are not specified.
Jun KATAOKA is a Professor at Waseda University's Faculty of Science and Engineering, School of Advanced Science and Engineering, where he leads cutting-edge research at the intersection of high-energy physics, medical imaging, and radiation detection. He serves as Research Director for the JST Strategic Basic Research Programs (ERATO) 'Kataoka Line X-ray Gamma-ray Imaging' project and maintains an active research laboratory (SPXG Laboratory) focused on developing novel imaging technologies. Dr. KATAOKA earned his Doctor of Science from the University of Tokyo, completing his entire academic training in the Department of Physics, Faculty of Science. His educational background spans from undergraduate studies (1991-1995) through doctoral work (1997-2000), establishing a strong foundation in fundamental physics that informs his interdisciplinary research approach. His research program focuses on three interconnected domains: High-energy Astrophysics : Development of compact gamma-ray detectors for small satellite platforms to explore the MeV gamma-ray band, including discoveries of galactic-scale bubbles towering over the Milky Way Medical Physics : Creation of activation imaging techniques for tracking gold nanoparticles in vivo, enabling long-term visualization of drug distribution and pharmacokinetics Radiation Detection Technology : Innovation in Compton cameras, spectral CT systems, and prompt radiation imaging for applications in proton/carbon-ion therapy monitoring and nuclear decommissioning efforts His laboratory has achieved notable breakthroughs including the world's lightest (580g) palm-sized gamma-ray camera and techniques for visualizing cesium distribution using drone-mounted systems. Dr. KATAOKA's scientific contributions have been recognized with Japan's highest research honors, including the 2024 Commendation for Science and Technology from MEXT. His work has received extensive media coverage in outlets including Nikkei Newspaper, AIP, and Quanta Magazine, particularly for demonstrations of 'radioactivation imaging' technology that tracks gold nanoparticles in living organisms. His research has practical applications in cancer therapy, space exploration, and environmental remediation following nuclear incidents. As principal investigator of major research projects including JST ERATO and collaborations with JAXA, Dr. KATAOKA has secured substantial funding for interdisciplinary research. His laboratory serves as a hub connecting physicists, engineers, and medical researchers, with strong partnerships extending to space agencies, medical institutions, and national research organizations both in Japan and internationally. The SPXG Laboratory (http://www.spxg-lab.phys.waseda.ac.jp/) continues to push technological boundaries with recent developments in alpha particle trajectory imaging and multi-modal beam monitoring systems for radiation therapy.
Dr. John Moore is an Assistant Professor in the Department of Mechanical Engineering at Marquette University . He leads the Computational Mechanics of Materials Laboratory, focusing on computational mechanics, materials science, and high-performance computing. His research spans alloys, polymers, and biomedical devices. Education Ph.D., Mechanical Engineering, Northwestern University (2015) M.S.E., Civil Engineering, University of Washington (2007) B.S., Aeronautical and Astronautical Engineering, University of Washington (2005) Research Focus Dr. Moore's work combines computational modeling with experimental validation to understand material behavior under extreme conditions. Key areas include: Crystal plasticity modeling of metallic alloys Nonlocal damage mechanics for fatigue prediction Dynamic spallation and porosity evolution High-throughput X-ray imaging of additively manufactured materials UV-sensitive resin material modeling Recent Publications His recent work focuses on advanced computational techniques for material failure analysis, including: Nonlocal approaches for statistical fatigue prediction Microinertia effects in spall modeling Betatron X-ray tomography applications UV resin optimization studies Phase transformation fatigue mechanisms Contact Email: john.a.moore@marquette.edu | Phone: (414) 288-6641 Location: Haggerty Hall, 225, Marquette University, Milwaukee, WI 53201