Assoc Prof Ng Teng Yong is an Associate Professor at the School of Mechanical & Aerospace Engineering (NTU), specializing in numerical modeling and simulation. With a background as Research Manager at A*STAR Institute of High Performance Computing, his work spans materials science, nanotechnology, and aerospace engineering. Current focus on graphene-based desalination membranes Expertise in molecular dynamics simulations Investigates nanoscale fluid mechanics and structural dynamics Recent publications highlight advancements in energy-efficient electrodialysis, smart robotics, and nonlinear vibration analysis. His interdisciplinary approach integrates computational methods with experimental validation in additive manufacturing and soft material mechanics.
Professor Hala Zreiqat AM is a leading biomedical engineer at The University of Sydney , serving as the Director of the ARC Training Centre for Innovative BioEngineering . A Fellow of all major Australian academies (AAS, ATSE, FAHMS, FRSN), she develops 3D printed bioceramics for bone regeneration while championing diversity through initiatives like the IDEAL Society and BIOTech Futures mentorship program. Her work bridges academia, clinical practice, and industry in musculoskeletal research . Research Focus: Her lab creates synthetic bone scaffolds that mimic natural bone architecture, strength, and porosity, enabling non-rejected bone regeneration via patient-matched implants. Key applications include orthopaedic, dental, and maxillofacial repair , with over $18M in competitive funding and multiple patents. Current projects explore AI-driven scaffold performance prediction and anti-senescence strategies for aging-related bone loss. Scientific Trends: Recent publications highlight 3D printed nanovoxelated ceramics , antisenescence biomaterials , and multifunctional theranostic platforms . Her team integrates machine learning for scaffold design, atom probe tomography for interface analysis, and two-photon imaging for cellular monitoring in 3D environments. 2021-2022 Fulbright Senior Scholar 2018 NSW Premier's Woman of the Year 2019 Eureka Prize for Innovative Use of Technology Fellow of Australian Academy of Science (2021) Over $18M in research funding Teaching & Leadership: She designed core courses like Tissue Engineering and Nanomaterials in Medicine , mentoring 158 students in 2020 alone. As Chair of CAAR (2020-2023), she strengthens Australia-Arab collaborations. Her lab trains early-career researchers , with alumni now in academia and industry.
Professor Manolis Gavaises is a leading academic in the field of mechanical engineering and computational fluid dynamics at City St George's, University of London, where he holds the position of Professor in the School of Engineering and Mathematical Sciences. He earned his PhD from Imperial College London and has been a faculty member since 2001, progressing to full Professor in 2009. His research is centered on advanced modeling of multi-phase flows, cavitation, and fuel injection systems, with extensive collaborations across Europe and industry partners such as Delphi, Caterpillar, and BP. Education: DIC, Mechanical Engineering, Computational Fluid Dynamics, Imperial College London, 1997 PhD, Mechanical Engineering, Computational Fluid Dynamics, Imperial College London, 1997 Diploma (5 years), Mechanical Engineering, National Technical University of Athens, 1992 His research interests span computational fluid dynamics, cavitation, fuel injection, atomization, high-pressure and supercritical flows, and alternative fuels . He has developed advanced numerical models and experimental techniques, including X-ray phase contrast imaging and high-pressure test rigs. His work integrates fundamental DNS and LES simulations with industrial applications in automotive, marine, aerospace, and medical devices such as heart valves. The recent publications reflect a strong trend toward real-fluid thermodynamic modeling (e.g., PC-SAFT), multi-component fuel behavior, cavitation erosion, and advanced diagnostics . His research increasingly incorporates machine learning and high-fidelity imaging to understand complex flow phenomena across energy, transportation, and biomedical domains. Scientific Awards and Recognitions: Richard Way Prize (1998) Arch T. Collwell Merit Award (1998) Best Oral Paper, SAE World Congress (2006) PE Publication Award, IMechE (2007) Best Presentation Award, Engine Combustion Processes (2009) Fellow, IMechE (2013) Fellow, IMA (2015) As a dedicated mentor, Professor Gavaises has supervised 13 PhDs to completion and currently guides 23 doctoral students. He has secured over €16 million in EU and UK funding, including multiple Horizon 2020 Marie Skłodowska-Curie ITN projects (CAFÉ, HAOS, IPPAD), which support 46 early-career researchers globally. He has created academic opportunities for post-docs and junior faculty, significantly advancing the research profile of his institution. He leads the International Institute of Cavitation Research (IICR), co-founded in 2011 with partners from Loughborough University, TU Delft, and Imperial College, supported by The Lloyd’s Register Foundation. His lab maintains strong experimental capabilities, including a 2000bar pressure flow rig with micro-transparent nozzles and collaborations with Argonne National Laboratory for X-ray imaging.
F. Levent Degertekin is a Regents' Entrepreneur and the George W. Woodruff Chair in Mechanical Systems and Professor at the George W. Woodruff School of Mechanical Engineering at Georgia Institute of Technology. His office is located in Love Building, room 311B, and his contact email is levent.degertekin@me.gatech.edu. Dr. Degertekin's academic journey includes a Ph.D. in Electrical Engineering from Stanford University (1997), an M.S. in Electrical Engineering from Bilkent University, Turkey (1991), and a B.S. in Electrical Engineering from Middle East Technical University, Turkey (1989). Dr. Degertekin's research focuses on micromachined ultrasonic devices and systems for medical applications, particularly in intravascular ultrasound imaging, therapeutic ultrasound, and acousto-optical sensors for MRI. His work spans from fundamental research on novel transduction methods to complete catheter-based imaging systems close to commercialization. He has made significant contributions to capacitive micromachined ultrasonic transducers (CMUTs), developing diffraction grating based optomechanical sensing methods now commercialized by Silicon Audio, novel atomic force microscopy imaging probes, and micromachined ultrasonic ejector structures for cell transfection commercialized by OpenCell Technologies. His research integrates acoustics, optics, and their combinations for various medical applications, utilizing conventional microfabrication (MEMS) and integrated circuit technologies. The Degertekin lab exposes students to applied physics, electrical, mechanical and biomedical engineering, biology, and biomimetic systems, providing them with thorough theoretical and experimental education in acoustics and optics while learning interdisciplinary research. Dr. Degertekin's work has received significant media attention, including coverage in IEEE Spectrum, Wired Magazine, The New York Times, and Fox Business News, highlighting innovations such as handheld ultrasound probes, MRI safety sensors, and minimally invasive cardiac imaging technologies. IEEE Fellow for 'Contributions to micromachined ultrasonic and optomechanical transducers and systems,' 2022 IEEE UFFC Society Inaugural Carl Hellmuth Hertz Ultrasonic Achievement Award, 2014 George W. Woodruff School Outstanding Achievement in Commercialization and Entrepreneurship Award, 2024 National Science Foundation CAREER Award, 2004-2009 Whitaker Foundation Biomedical Engineering Research Grant Award, 2001 66 US and 6 International Patents Dr. Degertekin has mentored numerous students who have gone on to make significant contributions in the field. Several of his students have received IEEE Ultrasonics Symposium Best Student Paper Awards, including Jeff McLean (2003), Sheng-Yu Peng (2006), Rasim O. Guldiken (2005 and 2007), and Toby Xu (2014). His research has been supported by various grants including the NSF CAREER Award and Whitaker Foundation grant. His work has led to multiple commercial ventures including Silicon Audio and OpenCell Technologies. The Degertekin Group at Georgia Tech focuses on transducers and systems for medical imaging and sensing, with current projects including capacitive parametric transducers, acousto-optic sensors for MRI, novel transducer methods for focused ultrasound in the brain, microsystems for intravascular and intracardiac ultrasound imaging, and CMUT-on-CMOS systems for IVUS imaging.
Amit Lal is a Professor in the School of Electrical and Computer Engineering at Cornell University, with affiliations in Biomedical Engineering, Applied Engineering Physics, and Mechanical and Aerospace Engineering. He is a member of key research centers including Cornell CCMR, NBTC, and KAUST-CU. Education: B.S. in Electrical Engineering, California Institute of Technology, 1990 Ph.D. in Electrical Engineering, University of California, Berkeley, 1996 Prof. Lal's research focuses on the development of integrated microsystems using micro- and nanoscale fabrication. His work spans ultrasonic MEMS, low-power IoT sensors, atomic microsystems, and bio-robotics. He directs the SonicMEMS Laboratory, advancing technologies in GHz ultrasonics, inertial sensing, and chip-scale manipulation of particles. His interdisciplinary interests include biomedical imaging, solid-state devices, nanotechnology, and plasma science. His recent publications highlight innovation in energy harvesting, MEMS gyroscopes, and biologically integrated systems. The works reflect strong trends in autonomous sensing, miniaturized power sources, and hybrid bio-electromechanical systems, particularly for medical and navigation applications. Scientific Awards and Honors: NSF CAREER Award Whitaker Foundation Award Department of Defense Exceptional Service Award Best Program Manager Award, DARPA IEEE Ultrasonics and Frequency Control Symposium Best Paper Award IEEE NEMS Best Paper Award Robert M. Scharf 1977 Professor, Cornell Engineering HHMI Visiting Scientist, Janelia Farms Intel Fellowship (awarded to advisee) Prof. Lal has advised numerous students who have gone on to win awards and publish impactful research. He has secured significant research funding through DARPA and other agencies, managing and initiating multiple high-impact programs. His leadership extends to service on technical committees for IEEE conferences and journals, including Transducers and the IEEE Sensors Council. He has also contributed to academic recruiting within ECE. He leads the SonicMEMS Laboratory , a multidisciplinary research group focused on transforming sensing, communication, and computation at the microscale. The lab fosters collaboration across engineering and life sciences, pushing the boundaries of what integrated microsystems can achieve.
Hani Henein is a Professor in the Department of Chemical and Materials Engineering at the University of Alberta's Faculty of Engineering. He obtained his MEng from McGill University (1975) and PhD from UBC (1981), later joining Carnegie-Mellon University before moving to the University of Alberta in 1989. His research integrates ICME, machine learning, and physical modeling to study additive manufacturing, rapid solidification, pipeline steels, and thermophysical properties. Research Focus: Dr. Henein leads projects on ultrasonic atomization, Al-Ce/Al-Sc alloy solidification, hybrid investment casting, and in-situ composite formation for wear-resistant applications. His work emphasizes microstructure control in high-temperature processes and industrial collaborations with Syncrude, EVRAZ, and space agencies (ESA/DLR). Awards & Leadership: Killam Research Fellowship and 5 best paper awards Fellow of 5 major societies (CIM, ASM, CAE, TMS, IOM3) 2019 President of AIME and 2014 President of TMS Education Initiatives: Founded international work-abroad programs (80+ students placed since 2002) and a Dual Degree Program with Université de Lorraine. Currently advises 6 PhD and 7 MSc students on projects spanning rapid solidification, pipeline welding, and lattice composites.
David S. Matteson is a Professor and Associate Department Chair in the Department of Statistics and Data Science at Cornell University. He holds affiliations with the Bowers College of Computing and Information Science, the ILR School, the Center for Applied Mathematics, and the Program in Financial Engineering. His research focuses on developing statistical and machine learning methodologies for complex systems, with applications in finance, environmental science, healthcare, and nanotechnology. He received his PhD in Statistics from the University of Chicago and a BSB in Finance, Mathematics, and Statistics from the University of Minnesota. His awards include the NSF CAREER Award (2015), SUNY Chancellor’s Award (2022), and Fellowships from the Institute of Mathematical Statistics and American Statistical Association (2024). Research interests span theoretical methods like changepoint analysis, high-dimensional time series, and functional data, alongside applied domains such as systemic risk, climate change, and medical imaging. He leads major NSF-funded initiatives including the PRISM Institute for Trans-domain Systemic Risk and the TRIPODS Greater Data Science Cooperative Institute (GDSC). Editorial Roles: Founding Editor-in-Chief of Data Science in Science , Associate Editor for Journal of Econometrics , and former editor for multiple statistical journals. Leadership: Chair of the ASA’s Business and Economic Statistics Section (2024), Director of the National Institute of Statistical Sciences (NISS). Grants: PI/Co-PI on NSF and USAID projects addressing systemic risk, energy systems, and poverty estimation.
University of California , Santa Barbara (UCSB)United States
Dr. Daniel Oropeza is an Assistant Professor in the Materials Department at the University of California, Santa Barbara (UCSB), within the College of Engineering. His research focuses on advancing materials and manufacturing technologies for aerospace systems and extreme environments, emphasizing process-microstructure-property relationships. He leads the Materials and Manufacturing for Aerospace and Extremes (MMAX) Lab, which develops novel techniques for powder synthesis, additive manufacturing, and ceramic processing. Education: Ph.D. in Mechanical Engineering (MIT, 2021) M.S. in Aeronautics and Astronautics (Stanford, 2014) B.S. in Aerospace Engineering (UT Austin, 2012) Research Interests: His work spans powder synthesis (e.g., ultrasonic atomization of refractory alloys), additive manufacturing (porous materials, reactive binder jetting), and functional ceramics for applications in hypersonics, space propulsion, and robotics. The MMAX Lab integrates material science, mechanical engineering, and advanced manufacturing testbeds to enable responsive manufacturing solutions. Awards & Grants: LLNL Early Career UC Faculty Initiative Award (2024) Global Young Investigator Award (ACerS, 2025) ONR Grant for Ultrasonic Atomization Research (2024) CNSI Challenge Grant for UC M 2 ADE Consortium (2024) Advising & Labs: He mentors a team of graduate and undergraduate students in the MMAX Lab, focusing on projects like NASA-funded research on refractory metal alloys for space propulsion. The lab collaborates with national labs (e.g., LLNL) and industry partners to bridge fundamental research and applied technologies. Labs/Teams: MMAX Lab develops custom equipment for powder bed fusion, nanoparticle jetting, and reactive binder jetting systems. Current projects include ultra-high temperature ceramics (UHTCs) for extreme environments and multi-material manufacturing for defense and energy applications.
Robin Ras is a Professor and Head of Department at the Department of Applied Physics at Aalto University, where he leads the Soft Matter and Wetting research group. His work focuses on surface science, particularly superhydrophobic and superoleophobic materials, with applications spanning renewable energy, biomedical engineering, and agricultural science. Ras earned his Master's degree in Engineering and Technology from Catholic University of Leuven in 1999, followed by a Doctoral degree from the same institution in 2003. His academic journey has positioned him as a leading researcher in wetting phenomena and nanoscale surface engineering. His research interests center on understanding and manipulating liquid-solid interactions at micro and nanoscales. Ras's work explores how surface topography and chemistry affect wetting behavior, with particular focus on superhydrophobic surfaces, droplet dynamics, and liquid-repellent materials. His group develops innovative approaches for creating surfaces with controlled wettability for applications ranging from self-cleaning materials to advanced biomedical devices. The research trends evident in Ras's recent publications show a strong focus on precision control of liquid-solid interfaces, with increasing attention to underwater applications, molecular-scale surface engineering, and biomimetic approaches. His work bridges fundamental surface science with practical applications in energy, healthcare, and sustainability. Among his notable scientific achievements: Anton Paar Research Award for Instrumental Analytics & Characterization (2018) for Scanning Droplet Adhesion Microscopy invention Academy of Finland Research Fellow (2011-2016) ERC Consolidator Grant (2017) Ras has secured significant research funding including the ERC Consolidator Grant for the SuperRepel project (2017-2022) focused on superslippery liquid-repellent surfaces, and the Academy of Finland project 'Electric Field; an Active Method to Control Phase Change' (2019-2022). His research group actively collaborates with international institutions and industry partners to translate fundamental discoveries into practical applications. The Soft Matter and Wetting research group under Ras's leadership combines experimental and theoretical approaches to investigate surface phenomena. The team utilizes advanced imaging techniques, precision surface fabrication methods, and computational modeling to understand and engineer surfaces with tailored wetting properties. Their work has applications across multiple sectors including renewable energy, biomedical devices, and sustainable agriculture.
Kenichiro Mizohata is a University Researcher at the Department of Physics, University of Helsinki, and serves as a Supervisor for the Doctoral Programme in Materials Research and Nanosciences. His research focuses on materials physics, ion beam analysis, and the development of advanced materials for energy and environmental applications. Key interests include thin film deposition techniques (e.g., atomic layer deposition), high-entropy alloys, and radiation effects on materials. He is a core participant in the Eurofusion HerHEA project (2024–2025), collaborating with experts in materials science and nuclear engineering. His work spans interdisciplinary collaborations, addressing challenges in sustainable materials, nuclear technology, and environmental science. Publications emphasize experimental and computational studies on material microstructure, defect dynamics, and surface engineering. Mizohata’s research outputs (166+ publications) reflect expertise in materials characterization, with recent trends in nanomaterials synthesis, irradiation-resistant alloys, and sustainable recycling technologies. His contributions advance both fundamental understanding and applied solutions in materials science.
Theodosia Stratoudaki is a Senior Lecturer in the Department of Electronic & Electrical Engineering at the University of Strathclyde, Faculty of Engineering. She joined the university in 2017 as a Strathclyde Chancellor’s Fellow and has since become a leading researcher in laser ultrasonics and remote sensing. She holds a PhD from the University of Warwick and completed postdoctoral research at the University of Cambridge and the University of Nottingham. Her research interests lie at the intersection of optics, acoustics, and materials engineering, focusing on laser-induced phased arrays (LIPAs) for remote ultrasonic imaging, non-destructive evaluation (NDE), and in-process monitoring in extreme environments. She applies these techniques to advanced manufacturing, including additive manufacturing and nuclear applications, collaborating with industrial partners such as the UK Atomic Energy Authority, Sellafield, and Hitachi. The trends in her recent publications show a strong emphasis on improving the resolution, efficiency, and adaptability of laser ultrasound systems—particularly through innovations in array design, grating lobe suppression, signal processing, and machine learning integration. Her work increasingly incorporates robotics and deep learning for automated inspection and tomography. She has received multiple scientific awards, including: EPSRC DTA PhD studentship (2018) BINDT Annual Conference Paper Award (2018) Best Paper Award (2018) Best Paper Award (2015) Dr. Stratoudaki is actively involved in research leadership and mentoring. She is currently recruiting PhD students and supervising multiple funded projects, such as the Robotic Laser Ultrasonic Inspection System and Impact Enhancement for Adaptive Laser Induced Phased Arrays (ALIPA). She also contributes to professional service as co-chair of the departmental Equality, Diversity and Inclusion (EDI) committee, chair of the Institute of Physics’ Physical Acoustics group, and a member of the British Standards Institute’s ultrasonics committee (EPL/87). She leads a research team focused on laser ultrasonics and is part of collaborative networks involving the University of Strathclyde’s Centre for Ultrasonic Engineering and industrial partners. Her lab develops advanced optical systems for non-contact ultrasonic inspection, often integrating robotics and AI for real-time, in-process evaluation.
Dr. Qianbin Wang is an Assistant Professor in the Department of Biomedical Engineering at Binghamton University. He holds a Ph.D. in Material Physics and Chemistry from Beihang University (2015) and has conducted postdoctoral research at New York University, Harvard Medical School (Boston Children's Hospital), and the University of Massachusetts Amherst as a Research Assistant Professor. His research focuses on biomechanical platforms to study neural degeneration and regeneration, particularly in glaucoma and spinal cord injury models. Key projects include developing polymeric viscobeads for ocular hypertension studies, non-invasive electroretinography for early glaucoma detection, and ultrasonic gene delivery systems to bypass retinal barriers. Educational Background: Ph.D. in Material Physics and Chemistry, Beihang University (2015) Postdoctoral Training: New York University, Harvard Medical School, UMass Amherst (Research Assistant Professor) Research Interests: Mechanotransduction in neuronal systems Non-invasive bioinstrumentation for early disease detection Gene delivery for ocular applications Neuroinflammation mechanisms in glaucoma Advising & Students: Eunji Hong (non-viral gene delivery) Wenjie (biomedical imaging materials) Ian Kim (glaucoma diagnostics) Chen Lin (hydrogel contact lenses) Labs/Teams: Neuromechanics Lab at Binghamton University, focusing on interdisciplinary approaches to neurodegenerative mechanisms and therapeutic development.
Dr. Glenn Harvel is a Professor in the Department of Energy and Nuclear Engineering at Ontario Tech University, located in Oshawa, Ontario. He holds a PhD in Nuclear Engineering (McMaster University, 1995) and has over three decades of academic and research experience. His expertise spans nuclear safety, energy systems optimization, and advanced diagnostic techniques. Education: PhD in Nuclear Engineering, McMaster University (1995) Master of Engineering in Engineering Physics, McMaster University (1991) Bachelor of Engineering, McMaster University (1989) Research Focus: Dr. Harvel’s research integrates Diagnostic Techniques (neutron radiography, ultrasonics), Energy Systems (EHD-driven pollution control and heat transport), and Nuclear Design (small modular reactors and plant aging mitigation). Recent work includes supercritical fluid thermal analysis and non-destructive material evaluation. Recent Research Trends: His 2013 publications emphasize supercritical fluid dynamics and advanced reactor cooling systems. Collaborations with industry (e.g., Toyota, CSA) and organizations (NSERC, OCE) highlight applied research in sustainable energy and nuclear safety. Affiliations and Memberships: Member of Canadian Nuclear Society Member of ASME Member of IEEE-DEIS Licensed Professional Engineer (PEO) Teaching: He instructs courses in nuclear plant design, safety, thermalhydraulics, and reactor engineering. Research Infrastructure: Based at the Energy Systems and Nuclear Science Research Centre (ERC), his lab focuses on experimental and computational analysis of energy systems and nuclear components.
Alessandra Martucci is a Fixed-term Assistant Professor at the Department of Applied Science and Technology (DISAT) at Politecnico di Torino, affiliated with the College of Chemical and Materials Engineering. Her research focuses on materials science, additive manufacturing, and microstructural analysis of alloys. Scientific Branch: IMAT-01/A - Materials Science and Technology (Area 0009 - Industrial and information engineering) Email: alessandra.martucci@polito.it Research Interests: Martucci’s work centers on additive manufacturing technologies (e.g., laser powder bed fusion), alloy development (Aluminum, Titanium), corrosion behavior, and process optimization for aerospace and industrial applications. She investigates microstructural evolution, heat treatment effects, and sustainability in manufacturing. Recent Publications Trends: Her studies address challenges in additive manufacturing, including cracking sensitivity, powder reuse, support structure optimization, and mechanical properties of Ti-6Al-2Sn-4Zr-6Mo and Al-based alloys. Key themes include sustainability, defect analysis, and phase characterization. Teaching Roles: Martucci collaborates in courses such as Materials & Design, Materials Engineering for Industry 4.0, Design and Additive Manufacturing for Aerospace Applications, and Materials for Additive Manufacturing at Politecnico di Torino.
Paul Prentice is a Senior Lecturer in the Department of Systems, Power and Energy within the School of Engineering at the University of Glasgow. His research focuses on acoustic cavitation phenomena driven by ultrasound, employing ultra-fast framing cameras and acoustic detection methods to study bubble dynamics in liquids and tissues. His primary research interests include developing fundamental understanding of cavitation for medical applications (such as drug delivery and blood-brain barrier modulation) and industrial processes (including materials processing, metal recycling, and sustainable manufacturing). Recent work demonstrates significant contributions to ultrasonic recycling of photovoltaic modules, critical metal recovery from e-waste, and nanoparticle-based therapeutic delivery systems. The publication trends reveal a strong emphasis on interdisciplinary applications: 40% of recent articles focus on medical ultrasound applications (blood-brain barrier, drug delivery), 35% on sustainable materials processing (metal recycling, battery electrode delamination), and 25% on fundamental cavitation dynamics (bubble synchronization, shock wave physics). Key collaborations exist with researchers in Chemistry (Abbott, Ryder), Biomedical Engineering (Cochran, Lucas), and Physics (Cammarano). As Deputy Director of the Centre for Medical and Industrial Ultrasonics (C-MIU), Prentice leads strategic research directions. His supervision portfolio includes 4 active PhD students and multiple PDRAs, with graduated students now holding positions at institutions like Queensland Brain Institute and Theraclion. Major grants include Horizon Europe APOLLO (€3.5M), EPSRC Sustainable Manufacturing (£1.2M), and ERC Starting Grant TheraCav (€1.45M). Teaching responsibilities include convening Advanced Imaging and Therapy 5 (ENG5285) and Advanced Ultrasonics (ENG5316), plus mentoring Integrated System Design projects. His work bridges fundamental physics with real-world industrial and medical challenges through the C-MIU center.