Dr. Ahmad Baroutaji is a prominent researcher at Aston University's School of Engineering and Technology, specializing in Additive Manufacturing, Metamaterials, and Energy Systems. His work focuses on advancing materials science for biomedical, acoustic, and energy applications. He holds a strong academic affiliation within the College of Engineering and Physical Sciences. Research Interests: Optimizing 3D-printed metamaterials for energy absorption and crashworthiness Development of advanced materials for fuel cells and hydrogen technologies Acoustic metamaterials for noise reduction in buildings Biomaterials for orthopedic and tissue engineering applications Notable contributions include pioneering studies on cobalt-chromium-molybdenum meta-scaffolds for bone reconstruction and acoustic panels using titanium perforated structures. His 2024 review on PEM hydrogen technologies has been widely cited. Collaborations span global institutions, emphasizing practical material innovations. Grants and Advising: While specific grants are not detailed, his extensive publication record indicates sustained research funding. No formal advisee list is provided, but co-authorships suggest collaborative mentorship. Labs/Teams: Engaged in multidisciplinary teams focusing on additive manufacturing applications, though specific lab names are not mentioned in the text.
Jason Trelewicz is a Professor at Stony Brook University’s Department of Chemical & Molecular Engineering and holds joint faculty status at Oak Ridge National Laboratory. His research focuses on interface-engineered materials for extreme environments, leveraging advanced processing, characterization tools, and multiscale modeling. He received his Ph.D. in Materials Science from MIT (2008) and previously served as Research Director at MesoScribe Technologies. His work emphasizes fusion materials, nanocrystalline alloys, additive manufacturing, and radiation effects. Awards include the DOE Early Career Award (2017), NSF CAREER Award (2016), and multiple best paper awards (2022). His lab, the Engineered Microstructures and Radiation Effects Laboratory, explores topics like ceramic composite moderators and plasma-facing materials. Education: Ph.D., Materials Science & Engineering, MIT (2008) Affiliations: Oak Ridge National Laboratory (Joint Faculty) Key research areas include thermal-mechanical evaluation of fusion reactor components, alloy design for additive manufacturing, and radiation tolerance of nanocrystalline materials. He has pioneered studies on helium bubble dynamics in tungsten and stability of doped nanocrystalline alloys. Awards: DOE Early Career Award, NSF CAREER Award, 2022 Best Paper Awards in Nuclear Materials and Asian Ceramics. Grants/Projects: Supported by DOE, NSF, and collaborative initiatives with Japan (FRONTIER). His group investigates corrosion behavior in 3D-printed steels and develops novel composite moderators for high-temperature reactors. Ongoing work includes multiscale modeling for fusion materials and in-situ TEM studies of irradiation effects.
Johan Ulrik Lind is an Associate Professor and Groupleader at the Department of Health Technology, Technical University of Denmark. His research focuses on cutting-edge biomedical engineering solutions including tissue engineering, bioprinting, and microphysiological systems. He actively contributes to additive manufacturing and functional materials development. Current Affiliation: Department of Health Technology, DTU Research Areas: 3D bioprinting, hydrogel technologies, microsystems engineering Expertise: UN Sustainable Development Goals for health and well-being Lind's work spans additive manufacturing for tissue engineering, functionalized biomaterials , and dynamic microphysiological systems . His recent publications highlight innovations in hydrogel formulation, bioink development, and particulate drug delivery systems. Notably, he holds a patent for transparent bioink formulation. He supervises multiple PhD projects including: micro-perfused bioartificial ovaries, embedded bioprinting of perfusable vasculatures, and 3D printed microsystems for tissue actuation. His research portfolio demonstrates strong interdisciplinary collaboration across engineering, biology, and pharmaceutical sciences.
Jacob Fish is the Robert A.W. and Christine S. Carleton Professor and Chair of the Department of Civil Engineering and Engineering Mechanics at Columbia University. He directs the Multiscale Science and Engineering Center and leads Columbia's Computational Science and Engineering initiative (iCSE), coordinating 65+ faculty. With 35 years of pioneering research, he specializes in multiscale computational methods bridging aerospace, automotive, and healthcare industries. His research integrates multiscale computational science with applications in: Homogenization and reduced-order methods for complex materials Stochastic modeling of heterogeneous systems Coupled thermo-chemo-electro-mechanical processes Data-physics driven frameworks for industrial processes Recent work emphasizes AI-enhanced modeling for composites, porous media, and environmental systems. His 15 most recent publications (2023-2025) demonstrate strong trends toward: Data-physics integration in manufacturing (e.g., resin transfer molding) Multiscale environmental applications (canopy flows, CO2 mineralization) Advanced numerical methods (discontinuous Galerkin, solver-free homogenization) Digital twin development for composite lifecycle management Scientific Awards & Honors: 2018 JSCES Grand Prize 2010 IACM Computational Mechanics Award 2005 USACM Computational Structural Mechanics Award 2003 Rensselaer Research Award Fellowships: AAM, USACM, IACM Two Best Paper awards He founded the commercial Multiscale Designer software suite (250+ global clients) and secured major grants including an NSF-DFG collaboration on thermoplastic interfaces. His textbooks are used in 200+ universities worldwide. Leads the Multiscale Science and Engineering Center focusing on industrial-scale computational challenges and mentors researchers through Columbia's iCSE initiative. Former President of USACM and current IACM Vice-President for the Americas.
Marat I. Latypov serves as Assistant Professor in the Department of Materials Science and Engineering at the University of Arizona's College of Engineering. He is also a member of the Applied Mathematics Graduate Interdisciplinary Program and leads the Materials Informatics Lab. His research spans computational materials science, sustainable alloy design, and machine learning applications for materials development. Dr. Latypov holds a PhD in Materials Science and Engineering from Pohang University of Science and Technology (POSTECH, South Korea, 2014) and a Dipl.-Ing. in Engineering Physics from Ufa State Aviation Technical University (Russia, 2011). His postdoctoral training included appointments at Georgia Tech/CNRS in France and the University of California, Santa Barbara. His research focuses on materials informatics , physics-informed machine learning , and sustainable structural alloys . Key methodologies include graph neural networks for polycrystal mechanics, vision transformers for microstructure representation, and adaptive experimental design for materials optimization. Recent work emphasizes circular economy applications through construction waste recycling and copper mine tailings valorization. Analysis of his publication record reveals strong emphasis on computational microstructure-property linkages (35% of recent work), machine learning for materials design (30%), and sustainable materials processing (25%), with growing integration of large language models for materials knowledge extraction. NSF CAREER Award (2025) : For damage control in recycled aluminum alloys ISTI Distinguished Faculty Scholar (2024) : At Los Alamos National Laboratory Novelis Hackathon First Prize (2021) : Computer vision application Acta Materialia Outstanding Reviewer (2018) Young Researcher Award (2017) : NanoSPD7 Conference Dr. Latypov advises PhD students including Herbold Fellow Zhuocheng Huang and leads projects funded by NSF and the Grantham Foundation. Current initiatives include chalcopyrite leaching optimization for copper mining and graph neural network development for fatigue prediction. His Materials Informatics Lab maintains collaborations with Los Alamos National Laboratory, MIT, and industry partners including Novelis. The lab operates at the intersection of metallurgy , machine learning , and high-performance computing , with capabilities spanning deep learning, Bayesian inference, and cloud-based computational infrastructure. Recent news highlights participation in CODAS-HEP summer school and publication of vision transformer work in Acta Materialia.
Guiru Nash Liu is a Global Professor in the Department of Materials Science and Engineering at the University of Arizona. She holds a PhD from Illinois Institute of Technology and has prior industrial experience as a senior experimental metallurgist at Progress Rail (Caterpillar Company) and as an adjunct professor at Illinois Institute of Technology. BS: Tianjin University, P.R. China MS: University of Southern California PhD: Illinois Institute of Technology (Materials Science and Engineering) Her research focuses on materials science and metallurgy , with specialization in corrosion, fatigue analysis, microstructural characterization, and alloy development . She has contributed to understanding fatigue failure in metallic components, environmental effects on crack propagation, and corrosion behavior in extreme conditions. Guiru Nash Liu's publications highlight expertise in corrosion kinetics, sintering mechanisms, alloy performance, and fatigue mechanics , particularly for titanium, copper, and steel alloys used in locomotive engines and aerospace applications. Fellow of ASM International (2020) Allan Ray Putnam Service Award (ASM International, 2022) Caterpillar CEO Award (2022) She has authored over 150 internal publications and 14 peer-reviewed works, served as a reviewer for the Journal of Materials Science and Journal of Metallography, Microstructure and Analysis , and was a founding member of the ASM International Failure Analysis Society.
Jacqui Webster is a Professor of Public Health at the University of Technology Sydney (UTS), leading the WHO Collaborating Centre on Nursing, Midwifery and Health Development. She serves as the Secretariat for the South Pacific Chief Nursing and Midwifery Officers Alliance (SPCNMOA) and continues collaborating with The George Institute for Global Health on salt reduction research. Key Grants: NHMRC Investigator Grant (Leadership 2), NHMRC IDEAS Grant, Global Alliance for Chronic Diseases grants Collaborations: Fiji National University, Deakin University, University of Sydney, UNSW, Northwestern University Her research focuses on reducing cardio-metabolic diseases through food/water security programs and salt reduction policies. Recent articles analyze potassium-enriched salt adoption barriers, global water sodium standards, ultra-processed food impacts in Fiji, and pandemic-related dietary shifts in Australia. She authored the public health-themed book Two Bugs on Bikes (Hembury Books 2025) based on her cycling journey across Europe and Africa. At UTS, she mentors early-career researchers and supports strategic operations for the WHO Collaborating Centre.
Shahriar Afkhami is a Researcher in the Department of Mechanical Engineering at LUT School of Energy Systems, LUT University. His research focuses on advanced materials science, additive manufacturing processes, and mechanical properties of high-strength steels and dissimilar joints. He specializes in fatigue analysis, welding technologies, and the optimization of structural components for industrial applications. His work integrates experimental methods with computational modeling to address challenges in material behavior under extreme conditions. Key research areas include: Welding of ultra-high strength steels and dissimilar materials Mechanical performance of additively manufactured components Fatigue life assessment of welded joints and cut edges Thermomechanical behavior of heat-affected zones Material characterization of laser powder bed fusion (LPBF) steels Publications highlight trends in additive manufacturing for industrial applications, particularly in optimizing 3D-printed metal structures and analyzing their mechanical integrity. His work on notch-load interactions and fatigue strength has advanced methodologies for predicting component failure under complex loading conditions. Notable contributions include the VERKOTA project exploring 3D printing networks for enhanced industrial adoption. No scientific awards are listed in the provided information. Afkhami's research has been supported by collaborative projects such as the VERKOTA initiative, though specific grants are not detailed here. He maintains an active presence on professional networks including LinkedIn and Google Scholar.
Vikram Deshpande is a Professor in the Department of Engineering at the University of Cambridge, UK, where he has been employed since 2010. He also maintains significant international connections, having served as a Visiting Professor at the Technical University of Eindhoven (2009-2017) and previously holding positions at the University of California, Santa Barbara and Brown University. His research spans multiple disciplines within solid mechanics and materials science, focusing on fundamental mechanisms that govern material behavior across different scales. His research interests encompass Mechanobiology , where he explores cellular organization mechanisms; Solid mechanics with applications to impact and failure; Data-driven mechanics approaches; Microarchitectured solids including mechanical metamaterials; Fluid-structure interaction in impact scenarios; Chemo-mechanics of battery materials; and Dislocation mechanics for understanding material deformation. His work uniquely bridges fundamental physics with practical engineering applications, particularly in developing materials with tailored mechanical properties. The analysis of his recent publications reveals a strong focus on mechanical metamaterials, cellular mechanics, and electro-chemo-mechanical phenomena in energy storage systems. His research demonstrates a consistent pattern of addressing fundamental scientific questions while maintaining strong connections to practical engineering applications, particularly in materials design, protective systems, and energy technologies. His publications frequently combine experimental approaches with sophisticated modeling techniques across multiple scales. 2024 Zdeněk P. Bažant Medal for Failure and Damage Prevention 2023 Fellow, Royal Academy of Engineering and International Member US National Academy of Engineering 2022 Warner T. Koiter Medal and William Prager Medal 2022 European Research Council (ERC) Advanced Grant 2021 Gili Agostinelli Prize and IIT Bombay Distinguished Alumnus Award 2020 Fellow, Royal Society of London and Rodney Hill Prize Professor Deshpande has served on numerous editorial boards including the Journal of the Mechanics and Physics of Solids (current Associate Editor), Modelling and Simulation in Materials Science and Engineering, and Proceedings of the Royal Society A. He chairs the Royal Society Sectional Committee 4 and serves on the Advisory Board of the European Mechanics Society EUROMECH. His leadership extends to directing the International Conference on Fracture and chairing the EUROMECH Mechanics of Materials Conference committee. His research group at Cambridge, accessible through cambridgesolidmechanics.co.uk, focuses on developing fundamental understanding of material behavior to enable the design of next-generation engineering materials.
Peter Karsmakers serves as Associate Professor at KU Leuven's Department of Computer Science within the Faculty of Engineering Technology, based at the Geel Campus. He coordinates the Declarative Languages and Artificial Intelligence (DTAI) research group and holds leadership roles including coordinator of Research and Education for Computer Science across Geel and Diepenbeek Campuses. Karsmakers earned his PhD in Engineering Science in May 2010, focusing on kernel-based learning algorithms for sparse modeling and efficient predictions from large datasets. His doctoral work established foundations for his current research trajectory in resource-constrained machine learning systems. His research integrates machine learning with signal processing for real-time sensor data interpretation, specializing in anomaly detection from acoustic, radar, and accelerometer signals on embedded devices. Current projects address industrial condition monitoring, elderly care systems, and livestock facility monitoring through three main tracks: acoustic monitoring (e.g., SINS, WATCHDOG), radar-based systems (e.g., FARADAY, NextPerception), and smart electronics for power converters. Recent publications demonstrate strong trends in constraint-guided deep learning architectures for industrial applications, cross-environment robustness in sensor systems, and domain-knowledge integration to reduce data requirements. His work consistently bridges theoretical machine learning with practical implementations in resource-constrained environments. No scientific awards or fellowships were mentioned in the provided materials. Karsmakers supervises over 10 master's theses annually and coordinates a research team of 10 PhD students and a post-doc within DTAI-ADVISE. He has secured approximately 2.3 million euros in funding through VLAIO, EU-ECSEL, and bilateral industry contracts, including 10 active projects such as AutoEdgeML (2024-2028) and Fault Tolerant Neural Networks for Space Applications (2024-2027). He leads the DTAI-ADVISE research group focused on developing software that attaches semantics to sensor data on resource-constrained devices. The team operates across multiple campuses with specialized labs for acoustic monitoring (Geel), radar-based systems (in collaboration with ESAT-TELEMIC), and smart electronics (with Electrical Engineering department), maintaining strong industry partnerships with companies in healthcare, manufacturing, and agriculture sectors.
S. Mallick is a Professor in the Department of Metallurgical Engineering and Materials Science at the Indian Institute of Technology Bombay (IIT Bombay), a position he has held since May 2021. His research is centered on advanced functional materials with applications in energy and electronics. Research Interests: Electroceramics and piezoelectric materials Dye-sensitized solar cells Structural transformations in perovskite-based oxides Hydrothermal synthesis of ceramic powders His recent publications indicate a strong focus on bismuth titanate systems, phase transformations, and high-temperature piezoelectric ceramics, reflecting a deep engagement with materials design and characterization. These works span disciplines such as materials chemistry, solid-state physics, and ceramic engineering, with implications for sensors, actuators, and renewable energy technologies. Scientific Contributions: Author of book: High Temperature Piezoelectric Ceramics (2009) Multiple peer-reviewed publications in applied physics and ceramic transactions S. Mallick advises research students in materials engineering and leads a research laboratory at IIT Bombay. His lab website (https://sites.google.com/site/pmlabiitb01/) and personal page (https://sites.google.com/site/sudhanshumallick/) reflect ongoing academic activity. He received his B.Tech. from IIT Bombay (2000), followed by an M.S. and Ph.D. from Purdue University in Electrical and Computer Engineering and Materials Engineering, respectively.
Dr. Anke Kirchner is a Researcher at the Leibniz Institute for Solid State and Materials Research Dresden (IFW Dresden) in the Department of Functional Oxide Layers and Superconductors. Her work focuses on superconducting materials, magnetic systems, and advanced thin-film deposition techniques for applications in levitation and energy-efficient transportation. Her research spans high-temperature superconductivity, nanocrystalline magnetic materials, and REBCO coated conductor development. Key contributions include optimizing artificial pinning centers in superconducting films, analyzing grain boundary structures in permanent magnets, and pioneering microacoustic sol atomization (MASA) for thin-film deposition. Her interdisciplinary approach bridges fundamental materials science with practical engineering applications in transportation and energy. Analysis of her 15 most recent publications (2000-2024) reveals consistent focus on superconducting levitation technologies and REBCO conductor performance enhancement. Her work demonstrates evolution from foundational studies of NdFeB magnet microstructures to cutting-edge innovations in coated conductor joints and tape-stack levitation systems, with strong emphasis on nanoscale characterization and process optimization. No scientific awards are mentioned in the provided text. Information regarding student advising, doctoral supervision, or research grants is not specified in the source material. The department specializes in oxide layer engineering and superconductor development, with Dr. Kirchner contributing to IFW Dresden's internationally recognized research on quantum levitation and magnet-superconductor interactions, frequently collaborating with Prof. L. Schultz on applied superconductivity projects.
Angelo Cervone is a Professor at Delft University of Technology's Department of Astrodynamics & Space Missions within the Faculty of Aerospace Engineering. His research focuses on advanced propulsion systems, CubeSat technology, additive manufacturing for space applications, and space systems design. He leads projects like LUMIO, a CubeSat mission to monitor lunar meteoroid impacts, and has contributed to the development of green propellants and smart composite structures with embedded sensors. His work integrates cutting-edge manufacturing techniques like laser powder directed energy deposition with propulsion system optimization, emphasizing sustainable and robust space technologies. Cervone has authored over 130 publications and edited the book Adaptive On- and Off-Earth Environments , reflecting his expertise in off-world infrastructure and robotic production systems. He received the Rhizome Award (2021) for advancing autarkic systems in off-Earth habitat development. Key Projects: LUMIO CubeSat mission, Rhizome habitat system development, smart propellant tank design Research Themes: CubeSat propulsion, lunar exploration, additive manufacturing for space, in-situ resource utilization His articles highlight advancements in micro-thrusters, structural health monitoring via fiber optics, and autonomous navigation systems for deep-space CubeSats. Cervone collaborates globally on missions requiring innovative propulsion architectures and materials science breakthroughs.
Bryan Webler is a Professor in the Department of Materials Science and Engineering at Carnegie Mellon University (CMU) since 2013, with a courtesy appointment in the Department of Mechanical Engineering. He serves as Co-Director of the Center for Iron and Steelmaking Research (CISR), an industry-supported consortium, and is affiliated with the NextManufacturing Center and Mill 19 digital backbone initiative. His expertise spans process metallurgy, additive manufacturing, and steelmaking technologies. Education: B.S. in Engineering Physics (2005) from the University of Pittsburgh; M.S. (2007) and Ph.D. (2008) in Materials Science and Engineering from CMU. Prior to academia, he worked as a Senior Engineer at the Bettis Atomic Laboratory's Materials Technology department. Research focuses on four core areas: chemical reactions during liquid steel refining, non-metallic inclusion control, continuous casting of steel, and additive manufacturing (laser powder bed fusion, directed energy deposition). His group integrates high-temperature experiments, computational thermodynamics, and kinetic modeling. Notable contributions include developing oxide dispersion strengthening methods and advancing digital twin applications in manufacturing. Key awards include the Kent D. Peaslee Junior Faculty Award (AIST Foundation) and the AIST Foundation Steel Professor title. He serves on editorial boards for Metallurgical and Materials Transactions B and Metallurgical Research and Technology , and actively contributes to industry partnerships. Beyond technical work, Webler explores the history of metallurgy, particularly Pittsburgh's steel industry legacy. His lab's innovations address carbon management, energy production, and advanced materials processing for extreme environments.
Stephen W. Hoag is a Professor in the Department of Pharmaceutical Sciences at the University of Maryland School of Pharmacy. His research spans pharmaceutical formulation, process development, and analytical technologies, with a strong emphasis on solid oral dosage forms and controlled release systems. University: University of Maryland School: School of Pharmacy Department: Department of Pharmaceutical Sciences Email: shoag@umaryland.edu Phone: (410) 706-6865 Fax: (410) 706-0346 Address: 20 North Pine Street, Baltimore, MD 21201 Education: B.S. in Biochemistry, University of Wisconsin–Madison, 1982 Ph.D. in Pharmaceutics, University of Minnesota, Twin Cities, 1990 Dr. Hoag's research is centered on two primary areas: (1) the development of systematic methods for formulating immediate and controlled release tablets, utilizing instrumented tablet presses, shear cell analysis, and process analytical technology (PAT) such as Near-Infrared (NIR) and Raman spectroscopy; and (2) the application of mathematical models to understand mass transport in hydrogels, including calcium alginate and silk-elastinlike protein polymers. His work on folic acid supplementation and prenatal vitamins has important public health implications due to the role of folic acid in preventing neural tube defects. Although no recent publications are listed in the provided text, his research output is evident through his co-editorship of the widely used reference work Pharmaceutical Dosage Forms: Tablets (3rd edition, 2008), and his leadership in developing best practices for PAT in pharmaceutical manufacturing. Scientific Awards: No specific awards mentioned in the provided text. Dr. Hoag has actively mentored a large number of graduate students, postdoctoral fellows, and visiting scientists, contributing significantly to pharmaceutical education and workforce development. His laboratory is equipped with state-of-the-art instrumentation for preformulation, formulation, tableting, coating, dissolution testing, and analytical characterization. The lab supports both non-clinical and GMP-level manufacturing research, enabling translational development of dosage forms. He also leads a hands-on short course on tablets and capsules, further extending his educational impact. Research Facilities: Thermal analysis (DSC, MDSC) Solubility and viscosity measurement Moisture analysis (Karl Fisher, LOD) Mechanical testing (Instron) Flow characterization (shear cell, angle of repose) Particle size analysis (laser diffraction, SEM, sieve) Tablet presses (Stoke’s B2, Manesty Beta, fully instrumented) Coating systems (fluid bed, pan coaters) UV/Vis, HPLC, GC, MS instrumentation Environmental stability chambers Granulation, milling, blending equipment Dissolution testing with autosampler