Roy T.E. Hermanns is a University Researcher in the Department of Mechanical Engineering at Eindhoven University of Technology (TU/e). His work focuses on combustion science, renewable energy carriers, and thermal fluid dynamics. He holds a PhD in Mechanical Engineering (2007) from TU/e, specializing in laminar burning velocities of methane-hydrogen-air mixtures. Research interests include iron powder combustion, hybrid fuel systems, and sustainable energy solutions. He collaborates on projects like 'Stable high hydrogen low NOx combustion' and 'Multiscale analysis of metal fuel combustion,' contributing to low-emission propulsion systems and exascale computing applications. Recent activities include presenting at the 2nd conference on Metal-enabled Cycle of Renewable Energy (MeCRE) and organizing workshops on iron powder safety and microstructure analysis. His work aligns with UN Sustainable Development Goals related to affordable clean energy and climate action.
Dr. Olfa Lopez-D’Angelo is a researcher at the Department of Multiscale Simulation of Particulate Systems at Friedrich-Alexander-Universität Erlangen-Nürnberg. Her research focuses on granular rheology, additive manufacturing for space applications, and the behavior of materials under microgravity conditions. She leads the Rheologie granularer Materialien unter Weltraumbedingungen project (2023–2026), funded by the German Ministry for Economic Affairs and Climate Action (BMWK). Her work bridges theoretical physics, experimental engineering, and space technology. Key research interests include granular fluid dynamics, powder-based manufacturing processes in low-gravity environments, and the structural analysis of metamaterials. She has contributed to pioneering studies on acoustically propelled macroparticles and granular piston-probing in microgravity. Her interdisciplinary approach is evident in collaborations with institutions like ESA and DLR, as well as her involvement in projects such as the VIP-DROP2 module for droplet dynamics experiments. Awards: Granular Matter Gordon Research Conference Poster Prize (2022) ELGRA Research Prize (2021) Fly Your Thesis! 2019 (2018) ESA Networking/Partnering Initiative Fellowship (2017) Dr. Lopez-D’Angelo actively disseminates her work through international conferences (e.g., DPG, IAC) and public engagement initiatives, including the podcast Talk That Science . Her research emphasizes practical applications in space exploration, such as in-situ resource utilization and advanced manufacturing systems for extraterrestrial environments.
Brian J. Jaques is an Assistant Professor in the Micron School of Materials Science and Engineering at Boise State University, where he joined in 2009. He also serves as the director of the Boise State Advanced Materials Laboratory (AML) and holds a joint appointment with the Idaho National Laboratory (INL). His extensive institutional affiliations include being the Nuclear Energy Focus lead at the Center for Advanced Energy Studies (CAES) in Idaho Falls and serving as the Boise State program director for the Advanced Sensors and Instrumentation (ASI) with the INL. Boise State University - Micron School of Materials Science and Engineering Idaho National Laboratory (Joint Appointment) Center for Advanced Energy Studies (CAES) - Nuclear Energy Focus Lead (2019-2022) Boise State Advanced Materials Laboratory (Director) Dr. Jaques' research focuses on materials for extreme environments, energy materials, and nuclear enabling technologies. His primary interests include nuclear fuel synthesis, sensor design for nuclear applications, sintering processes, corrosion science, gas-solid reaction kinetics, mechanochemistry, particle science/powder synthesis, and mechanical behavior of materials. His work often intersects with additive manufacturing techniques for nuclear applications and advanced sensor development for in-pile (reactor core) environments. His research output shows a clear trend toward developing materials and sensors for nuclear applications, with increasing emphasis on additive manufacturing techniques since 2018. His recent publications demonstrate expertise in uranium dioxide and carbide fuels, zirconium-based materials for nuclear thermal propulsion, boron nitride coatings, and advanced strain sensing technologies for extreme environments. Dr. Jaques has received numerous scientific awards including: NSF S-STEM Scholar (2004) Advanced Fuel Cycle Initiative/Generation IV Fellow (2006) Outstanding Mechanical Engineering Student Award (2006) Professional Engineer license in Metallurgy and Materials Science (2011) Materials Science and Engineering Scholar Award (2015) He has been actively involved in significant research funding, serving as Co-PI on multiple Nuclear Energy University Program grants and National Science Foundation projects. His current work includes international collaborations to advance high uranium density fuels for Small Modular Reactors and developing additively manufactured sensors for nuclear applications. Dr. Jaques also contributes to educational initiatives including the REU Site on Advanced Manufacturing for a Sustainable Energy Future. His laboratory work centers around the Boise State Advanced Materials Laboratory (AML) and collaborations with the Idaho National Laboratory, focusing on developing novel sensors for in-pile applications that provide real-time, accurate, and spatially resolved information regarding test conditions and the performance of fuels and materials during irradiation.
Vanessa Magnanimo is a Full Professor at the MESA+ Institute, University of Twente, specializing in the micromechanics of granular materials and clays using advanced Discrete Element Method (DEM) simulations . Her research bridges micro- and macro-scale behavior of soils, focusing on computational modeling , small-strain stiffness , and material stabilization . She has led 107 research outputs and 2 datasets , including studies on wet granular systems , bio-cemented soils , and vegetated soil mechanics . Recent work includes 2025 publications on coarse-grained DEM and mixing indices in industrial processes. Notable activities include keynote talks at international events (2018–2020), visiting researcher appointments at institutions like 3SR Laboratory (2017) and Politecnico di Bari (2020), and editorial contributions. Her research spans geotechnical engineering , powder technology , and multi-scale modeling , with applications in soil stabilization , industrial powder handling , and eco-mechanical systems .
Dr.-Ing. Horst Hill is a Lecturer for Additive Manufacturing at Georg Agricola University of Applied Sciences (THGA) since March 2022, where he teaches in the Master's program "Material Engineering & Industrial Heritage Conservation". Additionally, he serves as Head of Special Materials at Deutsche Edelstahlwerke GmbH (since 2017), overseeing approximately 70 employees in the development of specialty steels and materials. Education: Diploma in Mechanical Engineering (specialization in materials engineering) from Ruhr University Bochum (2003-2008, overall grade: 1.5) Dr.-Ing. (PhD) from Ruhr University Bochum, Department of Materials Science (2008-2011), with dissertation on "Novel metal matrix composites (MMC) to increase the service life of wear-stressed tools in the polymer processing industry" (grade: very good) Research Interests: Dr. Hill's expertise lies at the intersection of advanced materials science and manufacturing technologies. His primary research focuses on additive manufacturing processes , particularly the development of new materials for 3D printing applications. He specializes in metal matrix composites (MMCs) with enhanced wear and corrosion resistance, specialty steels for demanding industrial applications, and powder metallurgy techniques for producing high-performance materials. His work bridges fundamental materials research with practical industrial applications in polymer processing, tooling, and energy sectors. His research encompasses the entire value chain from material design and process optimization to application-specific performance evaluation, with particular emphasis on sustainable manufacturing practices and resource efficiency in materials production. Research Trends: Dr. Hill's publication record demonstrates a clear evolution from fundamental materials research to applied additive manufacturing technologies. His early work (2009-2012) focused on understanding sintering behaviors, microstructural design, and performance optimization of metal matrix composites and plastic mold steels. From 2015 onwards, his research shifted toward additive manufacturing applications, exploring novel materials for 3D printing, graded material structures, and process-specific material developments. Recent publications (2021-2022) showcase cutting-edge work in high-strength austenitic materials for additive manufacturing and compositionally graded structures, reflecting the rapid advancement in the field. Professional Affiliations: Georg Agricola University of Applied Sciences (THGA) - Lecturer for Additive Manufacturing (since 03/2022) AiF e.V. - Reviewer for Subgroup 7.4 "Additive Manufacturing" (since 01/2022) Düsseldorf University of Applied Sciences (HSD) - Teaching assignment in Materials Engineering (09/2021-02/2022) Deutsche Edelstahlwerke GmbH - Various roles including Head of Special Materials (since 2012) Industrial Leadership: At Deutsche Edelstahlwerke, Dr. Hill leads the Special Materials division with approximately 70 employees, focusing on developing and producing high-performance specialty steels and metal matrix composites. His team works on innovative solutions for demanding applications in polymer processing, tooling, and other industrial sectors, combining advanced metallurgy with cutting-edge manufacturing technologies.
Rainer J. Hebert is a Professor in the Department of Materials Science and Engineering at the University of Connecticut, serving as Director of the Pratt and Whitney Additive Manufacturing Center and Associate Director of the Institute of Materials Science. His research focuses on advancing additive manufacturing technologies with particular emphasis on materials development and process optimization for industrial applications. Education Ph.D., University of Wisconsin-Madison, 2003 Postdoctoral Fellow, University of Wisconsin-Madison, 2003-2005 Post Doctoral Fellow, Research Center Karlsruhe, Germany (now Karlsruhe Institute of Technology), 2003-2005 Research Interests Professor Hebert's research spans multiple areas within materials science and additive manufacturing. His primary focus is on developing new alloys specifically designed for additive manufacturing processes, with particular attention to how microstructures form during rapid solidification and laser processing. He investigates powder characteristics and their effects on the final manufactured products, aiming to improve quality and performance. His work on quasicrystal-reinforced aluminum alloys has shown promising results for high-performance applications, and he has made significant contributions to understanding the fundamental mechanisms of laser powder bed fusion. Hebert's research bridges fundamental materials science with practical industrial applications, particularly in aerospace and high-temperature environments. Publication Trends Analysis of Professor Hebert's recent publications reveals a strong focus on advancing additive manufacturing technologies, particularly laser powder bed fusion. His work spans from fundamental materials science (microstructure formation, phase transformations) to practical applications (alloy design, process optimization). A notable trend is the increasing integration of computational methods with experimental work to predict and optimize material behavior. His research shows a progression from basic microstructure characterization to more complex systems involving multi-material interactions, intelligent manufacturing systems, and the development of specialized alloys resistant to cracking and other defects. The consistent theme across his publications is improving the reliability and performance of additively manufactured components for demanding applications. Awards Materials Science and Engineering Program Teaching Award, 2010-2011 Advising and Grants As Director of the Pratt and Whitney Additive Manufacturing Center, Professor Hebert oversees significant research initiatives funded by both government agencies and industry partners, particularly in aerospace applications. His leadership in the Institute of Materials Science provides opportunities for student research and collaboration across multiple disciplines. His extensive publication record suggests active mentorship of graduate students in materials science and engineering. His research program likely involves multiple PhD and Master's students working on various aspects of additive manufacturing, from fundamental materials science to process development. Laboratories and Teams Professor Hebert directs the Pratt and Whitney Additive Manufacturing Center at UConn, which serves as a hub for collaborative research between academia and industry. The center focuses on advancing metal additive manufacturing technologies, particularly for aerospace applications. He also plays a key leadership role in the Institute of Materials Science, one of UConn's premier research centers. His research teams likely include graduate students, postdoctoral researchers, and industry collaborators working on projects related to powder characterization, laser processing, microstructure analysis, and alloy development. The collaborative nature of his work is evident from the multi-institutional authorship on many of his publications.
Professor David Armstrong serves as Professor of Materials Science and Engineering at the University of Oxford and Fellow and Tutor at St Edmund Hall. His work focuses on developing materials for extreme environments including nuclear fusion reactors, aerospace systems, and energy storage applications through microstructural control and advanced mechanical characterization. His educational background includes a first degree in Materials Science from St Anne’s College, Oxford and a DPhil from Corpus Christi, Oxford investigating micromechanical properties in copper and nickel alloys. This foundational work evolved into radiation damage studies during his Culham Centre for Fusion Energy Junior Research Fellowship. Armstrong's research centers on mechanical behavior of materials under extreme conditions—high temperatures (jet engines, reactors), radiation exposure (nuclear facilities, space), and high stresses (batteries, geological systems). He develops novel testing methodologies for nanoscale mechanical properties up to 1300 K, collaborating with Rolls Royce, UKAEA, ESA, and Berkeley on fusion materials, aerospace components, and battery technologies. His work bridges fundamental micromechanics with industrial applications in energy systems. Analysis of his 2023-2025 publications reveals dominant themes in nuclear fusion materials (tungsten, ODS steels), lithium battery interfaces, and ceramic composites for extreme environments. Methodologically, his group pioneers correlative microscopy combining nanoindentation, TEM, and atom probe tomography to study irradiation effects, high-temperature deformation, and interfacial degradation across length scales. His scientific recognition includes: Culham Centre for Fusion Energy Junior Research fellowship (2009) Royal Academy of Engineering Research Fellowship (2013) Institute of Materials Minerals and Mining Grunfeld Memorial Award & Medal (2015) As an educator, Armstrong teaches core mechanical properties courses across undergraduate years and leads Fusion CDT modules on nuclear materials. He supervises numerous doctoral students while serving on the EPSRC Fusion Advisory Board and CDT management board. Current grants support micro-engineering of alloys for nuclear environments and lithium-metal battery development through industry partnerships with Rolls Royce and MicroMaterials. His research group operates advanced micromechanical testing facilities for high-temperature and irradiated materials, collaborating with UKAEA’s Culham Centre and European fusion laboratories on plasma-facing component development. Future work targets solid-state battery interfaces and radiation-resistant high-entropy alloys for next-generation fusion reactors.
Jan Stake is a Professor of Terahertz Electronics and head of the Terahertz and Millimeter-Wave Laboratory at Chalmers University of Technology. He holds a MSc (1994) and PhD (1999) in electrical engineering and microwave electronics from Chalmers. His research focuses on terahertz technology for space missions, climate science, and industrial applications. Key projects include developing THz components for the Jupiter Icy Moons Explorer (Juice) and MetOp satellites, and creating sensors for pharmaceutical manufacturing. He has authored 388+ publications, served as Editor-in-Chief of IEEE Transactions on Terahertz Science and Technology , and is an IRMMW-THz board member. Current work emphasizes integrated THz components for space science and wireless communication. Awards include visiting research fellowships at the UK’s National Physical Laboratory (2023). Teaching includes semiconductor physics and microwave engineering, with a weekly journal club for PhD students. Research Interests: Terahertz fundamental science and applications Space instrumentation (e.g., SWI instrument for Juice mission) Climate monitoring via atmospheric THz measurements Graphene-based THz detectors and amplifiers THz radar systems for industrial process monitoring Recent Work Trends: Recent articles (2023–2025) emphasize high-precision quantum-cascade lasers , antenna alignment optimization , industrial THz sensing systems , and space-borne receiver reliability . Key themes include improving THz component integration, enhancing spectral resolution for molecular analysis, and advancing THz applications in manufacturing and environmental science. Awards & Roles: Editor-in-Chief, IEEE Transactions on Terahertz Science and Technology (2016–2018) Chair, IEEE THz Best Paper Award Committee (2019–2021) Elected IRMMW-THz Board Member (2017–2024) Visiting Research Fellow, UK National Physical Laboratory (2023) Grants & Collaborations: Active in EU and industry partnerships for space instrumentation (e.g., Juice mission) and pharmaceutical sensing. Lab develops THz components with companies in aerospace and medical sectors. Labs/Teams: Leads the Terahertz and Millimeter-Wave Laboratory, collaborating with National Physical Laboratory (UK) and ESA on space instrument development.
Dr. Mark D. Soucek is a Professor and Interim Director at the School of Polymer Science and Polymer Engineering at the University of Akron. With over 140 publications in coating science, his work spans UV-curable systems, hybrid organic-inorganic coatings, and sustainable polymer technologies. Previously held positions include: NASA Langley Research Center (1990-1993) North Dakota State University (1993-2001) University of Akron (2001-present) Education : Ph.D. in Inorganic Chemistry, University of Texas at Austin (1990) M.S. in Organic Chemistry, Illinois State University (1986) B.S. in Chemistry, Eastern Illinois University (1983) Research Focus : Developing environmentally benign coatings through nanotechnology and bio-based materials. Specializes in crosslinked systems including UV-curable, thermosetting powder, and hybrid coatings with enhanced properties like corrosion resistance and self-healing capabilities. Current projects emphasize creating a UV-Curable Powder Coatings Research Center for industrial collaboration. Scientific Contributions span 25+ years of coating innovations, with recent emphasis on: Seed oil-based reactive diluents Smart corrosion-inhibiting coatings Hybrid inorganic/organic systems Photopolymerization kinetics Awards & Roles : Sundar L. Aggarwal Endowed Professor Cleveland Coating Society President (2009) Grants include: Industry/University Cooperative Research Center in Coatings (1995-2001) UV-Curable Epoxidized Linseed Oil Based Coatings (2002-2005)
Yu U. Wang is a Professor in the Department of Materials Science and Engineering at the College of Engineering, Michigan Technological University. His research integrates experimental characterization and computational modeling to advance functional materials science, with a focus on phase transformations and microstructure-property relationships. Dr. Wang's educational background includes: PhD in Mechanical and Aerospace Engineering from Rutgers University BS in Mechanical Engineering from the University of Science and Technology of China His research spans phase transforming materials, in-situ synchrotron X-ray and neutron scattering techniques, diffuse scattering analysis, ferroelectric/magnetoelectric composites, colloidal self-assembly systems, and computational microstructure modeling. This work bridges fundamental materials physics with applications in energy harvesting, sensing, and advanced ceramics, emphasizing the interplay between nanoscale phenomena and macroscopic properties. Analysis of Dr. Wang's publications reveals a sustained focus on computational materials science, particularly phase field modeling applied to ferroelectric and shape-memory systems. His research consistently combines theoretical frameworks with experimental validation through diffraction techniques, targeting high-strain piezoelectrics, magnetoelectric composites, and nanodomain engineering for next-generation functional materials. Scientific awards received by Dr. Wang are not specified in the available documentation. Details regarding graduate student advising, research grants, and laboratory facilities are not provided in the source material, though his extensive publication record indicates active research supervision and project leadership.
Dr. Prasad Rao Rangaraju is a Professor of Civil Engineering at Clemson University's Glenn Department of Civil Engineering. His research focuses on sustainable materials engineering, decarbonization of cement production, and concrete durability. He holds a B.Tech from Jawaharlal Nehru Technical University (India), an M.S. from Iowa State University, and a Ph.D. from Purdue University. Professional affiliations include the American Society of Civil Engineers, American Concrete Institute, and Transportation Research Board. His work emphasizes eco-friendly material innovations like geopolymer alternatives, recycled glass utilization, and additive manufacturing with cementitious materials. He teaches courses on sustainable construction, advanced concrete technology, and materials characterization techniques. Key research contributions include developing rapid testing methods for alkali-silica reactivity, optimizing ternary blends for durability, and advancing full-depth reclamation techniques for pavements. His lab explores cutting-edge solutions for infrastructure rehabilitation and low-carbon construction practices.
Mostafa Barigou is a Professor of Chemical Engineering and Head of Postgraduate Studies (Research) at the School of Chemical Engineering, University of Birmingham. He holds a BEng (1st Class Honours) in Mechanical Engineering (1982), PhD in Chemical Engineering (1987), and DSc in Experimental and theoretical studies of complex flows and complex fluids (2011). His research focuses on fluid dynamics, rheology, and transport processes in complex fluids, leveraging advanced techniques like Positron Emission Particle Tracking (PEPT), CFD, and PIV. Professor Barigou has supervised over 20 PhD students and 10 postdoctoral researchers, contributing to industries such as food processing, pharmaceuticals, and metallurgy. His work has been funded by UK Research Councils and industry partners like Procter & Gamble, Nestlé, and Johnson Matthey. He is a Fellow of the Institution of Mechanical Engineers (FIMechE) and a Chartered Engineer (CEng). Research interests include: complex fluid dynamics, multiphase systems, foam and emulsion stability, and CFD modeling. His lab uses PEPT to study opaque systems, developing novel insights into mixing and flow dynamics. Collaborations span biomedical engineering (e.g., blood flow studies) and food engineering (e.g., mycoprotein pastes). Awards include the Elijah-Hepworth Memorial Prize (1982) and leadership roles in EPSRC grants. He edits journals like the International Journal of Food Properties and serves on national/international committees for chemical engineering and food engineering.
Danielle Lynn Cote is an Assistant Professor in Materials Science & Engineering at Worcester Polytechnic Institute (WPI), affiliated with the Mechanical and Materials Engineering department. She holds a Ph.D. in Materials Science & Engineering (WPI, 2014), an M.S. in Materials Science & Engineering (WPI, 2010), and a B.S. in Chemical Engineering (University of New Hampshire, 2005). Her research focuses on computational modeling, cold spray additive manufacturing, and advanced materials for high-deposition-rate processes. Notable awards include the NASA Early Career Faculty Award (2021) and TMS Early Career Fellow (2022). Research highlights include development of antimicrobial copper coatings via cold spray, thermal preprocessing of aluminum alloys, and optimization of feedstock powders for additive manufacturing. She leads the Cote Research Group, part of MatR: Materials Reimagined initiative, and has secured over $25M in research funding. Her work integrates computational materials science with experimental validation, emphasizing sustainable manufacturing and materials innovation. Grants: $25M Army Research Lab grant for cold spray repair technology, $56M FY2020 university-wide funding. Labs: Cote Research Lab (Data-Driven Materials Science), MatR interdisciplinary group. Teaching: Courses in Materials Science and Phase Transformations.
László Lengyel is a Professor at the Budapest University of Technology and Economics (BME), affiliated with the Department of Automation and Applied Informatics . His work bridges theoretical and applied computer science, focusing on industrial automation, IoT systems, and model-driven engineering. Research interests include Model transformations and domain-specific languages IoT device management and multi-domain integration Software obfuscation and cybersecurity Graph algorithms and distributed computing (MapReduce) Real-time data analysis in manufacturing Automotive sensor networks His recent publications reflect expertise in model-driven IoT architectures , granule manufacturing automation , and MapReduce-based graph analysis , with a focus on industrial and automotive applications. He contributes to open-source frameworks like SensorHUB and explores gamification in driver behavior systems.
Jennifer Burgain is a Lecturer at the University of Lorraine, France, specializing in physical chemistry and food process engineering. Her research focuses on food powder characterization, microencapsulation of probiotics, and the impact of processing/storage on technofunctional properties. Research Interests: Multi-scale analysis of food powders (agro-resources/co-products) Atomic Force Microscopy (AFM) for nanoscale particle characterization Glass transition effects on powder stability Microencapsulation of probiotics using dairy matrices Optimization of dairy powder processing parameters Scientific Awards: FIL France grant (2011) for probiotic encapsulation research Publications & Projects: Author of ~50 peer-reviewed articles, 6 book chapters, and 2 patents. Principal investigator for the ANR-funded ExPowSE project (2022-2026) analyzing plant-origin food powders. Teaching: Heads the Master 2 MILQ program on dairy industries and quality. Supervises practical process engineering work and teaches physicochemistry/biochemistry of milk proteins.