Jouni Partanen is a Professor at Aalto University's Department of Energy and Mechanical Engineering within the College of Engineering. His research focuses on advanced production technologies including Additive Manufacturing (3D-Printing), modern laser processing, and micromachining. Research Group: Materiaaleista tuotteiksi Specialization: Integration of AI in manufacturing processes Sustainability emphasis: Biochar-reinforced materials and carbon footprint reduction His work spans from fundamental material behavior analysis to industrial applications, particularly in metal additive manufacturing and composite fabrication. Recent research explores corrosion resistance in lattice structures and multiscale photopolymerization techniques. Publications highlight interdisciplinary approaches combining mechanical engineering with biomedical applications (e.g., patient-specific implants) and environmental health studies on industrial 3D printing emissions.
Dist. Professor Rachel Caruso is a Professor at RMIT University's School of Science, specializing in nanomaterials, energy storage systems, and photocatalysis. Her research focuses on advancing materials science through innovations in titanium-based nanomaterials, perovskite solar cells, and sustainable hydrogen production. She is actively involved in research supervision, offering guidance on topics like carbon capture, electrochemical CO₂ reduction, and antimicrobial surface engineering. Her work integrates machine learning for material discovery and emphasizes interdisciplinary applications in environmental and biomedical fields. Research Interests: Macromolecular Chemistry, Nanotechnology, Energy Materials, Photocatalysis, and Biomedical Applications. Supervision Projects: Includes pioneering studies on direct air capture of CO₂, graphene-based photocatalytic films, and perovskite materials for biomedical uses. Professor Caruso collaborates extensively on projects addressing global challenges such as renewable energy and antimicrobial resistance. Her contributions span over 200 publications, with notable advancements in titanium suboxide synthesis and electrocatalyst design.
Dr. Nhiem Tran is a Senior Lecturer in the Department of Applied Chemistry and Environmental Science at RMIT University's School of Science, part of the STEM College. He joined RMIT in 2015 as a Vice Chancellor's Research Fellow after completing his PhD in Physics at Brown University (USA, 2012) and postdoctoral research at Rhode Island Hospital (USA), CSIRO, and the Australian Synchrotron. His research focuses on developing biomaterials for drug delivery, gene therapy, and medical implants, particularly lipid nanoparticles and 3D-printed metallic implants. He leads the Biomaterial Interfaces group, investigating self-assembled lipid nanoparticles for cancer and autoimmune disease treatments. His work has resulted in over 65 high-impact publications and numerous awards, including the RMIT Vice Chancellor's Research Fellowship and the Stein/Bellet Foundation Fellowship. Tran's funding comes from grants such as the ARC Discovery Project, mRNA Victoria, and the CASS Foundation. His research interests span nanomedicine, biomedical engineering, and materials science, with a focus on applications in drug delivery, bacterial infection control, and orthopaedic implants. Education: PhD in Physics (Brown University, 2012) Key Projects: 3D-printed diamond-titanium implants, lipid nanoparticle drug carriers, and antimicrobial coatings. He actively supervises postgraduate research in areas like nanomaterials for drug delivery and biomedical applications.
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 Shaun Gregory is the Director of the Centre for Biomedical Technologies at Queensland University of Technology (QUT), where he also serves as Co-Director of the Artificial Heart Frontiers Program, Founder and Director of the Heart Hackathon student team competition, and Director of the CardioRespiratory Engineering and Technology Laboratory. He holds appointments in the Faculty of Engineering, School of Mechanical, Medical & Process Engineering. His educational background includes Bachelor, Masters (research), and PhD degrees, all awarded by QUT. He also holds both NHMRC and Heart Foundation fellowships, demonstrating his significant contributions to cardiovascular research. Professor Gregory's research applies a translational approach to cardiovascular engineering with a particular focus on devices used to support or replace the heart. His work brings together multidisciplinary teams of engineering, biomedical science, design, and medicine to develop novel technical solutions for clinically relevant problems. His research has changed clinical practice on numerous occasions and assisted with the regulatory approval of medical devices. His areas of interest include mechanical circulatory support, artificial heart development, cardiovascular device engineering, and hemodynamics. His publication portfolio demonstrates a strong focus on extracorporeal membrane oxygenation (ECMO), ventricular assist devices, and cardiovascular device testing. His recent work has explored computational fluid dynamics in blood flow analysis, novel cannula design for circulatory support, and the hemodynamic effects of various cardiovascular devices. His research often bridges engineering principles with clinical applications, resulting in practical innovations in cardiac support technologies. NHMRC Fellowship Heart Foundation Fellowship President-Elect of the International Society for Mechanical Circulatory Support Professor Gregory has successfully secured more than $65 million in research funding and has published over 100 research articles in his field. He is actively involved in mentoring the next generation of researchers, currently accepting Honours, Masters, and PhD students. His CardioRespiratory Engineering and Technology Laboratory serves as a hub for interdisciplinary research that brings together engineering, biomedical science, and clinical expertise to address critical challenges in cardiovascular medicine.
Thomas Beikler serves as a Professor in the Department of Periodontology, Preventive Dentistry and Dental Conservation at the University Medical Center Hamburg-Eppendorf (UKE), which operates under the Faculty of Medicine. His academic credentials include dual doctoral degrees as indicated by his title 'Univ.Prof.Dr.Dr.' Dr. Beikler's research spans multiple dimensions of periodontal science and oral-systemic health connections. His work investigates the relationship between periodontal disease and various systemic conditions including hypophosphatasia, liver cirrhosis, depression, and neurological changes. He has made significant contributions to understanding oral health literacy, particularly among German adult populations with migration backgrounds through the MuMi Study. His research methodology frequently employs large population-based studies like the Hamburg City Health Study to establish epidemiological connections between oral and general health. His publication record demonstrates a strong interdisciplinary approach, bridging dentistry with neurology, hepatology, psychiatry, and public health. Notable research directions include microbiome-based therapies for periodontitis, the role of biomarkers in oral health assessment, and the development of innovative dental education models in Germany. Dr. Beikler has led significant research projects including the 'Transplantation of a healthy oral donor microbiome for periodontal therapy' (2016-2019), which explored cutting-edge approaches to treating periodontal disease. He has also contributed to dental education reform through the iMED DENT program, Germany's first model dental study program.
Associate Professor Judy Hart is a materials scientist at the School of Materials Science & Engineering, UNSW Sydney , specializing in the development of semiconducting materials for renewable energy applications. Her work integrates computational (DFT) and experimental approaches to understand composition-property relationships in systems like solid solutions , heterostructures , and doped materials for photocatalysis and solar cells . She leads projects funded by ARC Discovery and Linkage grants , including work on photo-electro-catalysis systems and stabilizing ceramic materials . Education: PhD in Materials Engineering (Monash University, 2007), BEng (Materials) (Monash, 2002) Professional Experience: Senior Lecturer (UNSW, 2017–), Lecturer (UNSW, 2013–2017), University of Bristol (2007–2012) Research Interests Her research focuses on designing materials for renewable energy , particularly photoelectrochemical water splitting and organic oxidation reactions . Key areas include Density Functional Theory (DFT) , defect engineering , band gap tuning , and nanostructured materials . She investigates ferroelectric polarization effects , metal oxide heterostructures , and stability of battery components , with applications in hydrogen production , CO2 conversion , and advanced battery materials . Scientific Awards Ramsay Memorial Fellowship (University of Bristol, 2007–2009) Teaching Contributions She is co-author of the 1st Australian & New Zealand edition of "Materials Science and Engineering: An Introduction" , and teaches courses on computational materials science , corrosion-resistant surfaces , mechanical behavior of metals , and materials design .
Horst A. von Recum, PhD, is the Executive Vice Chair of the Case School of Engineering and a Professor in the Department of Biomedical Engineering at Case Western Reserve University. He is also a member of the Cancer Imaging Program at the Case Comprehensive Cancer Center. His research focuses on developing novel platforms for molecular and cellular delivery, including affinity-based systems for controlled drug release and directed stem cell differentiation. Key applications include HIV therapies, wound healing, ocular disease treatments, and tissue engineering. His work emphasizes improving drug delivery precision through molecular interactions and enhancing stem cell viability for therapeutic use. Dr. von Recum’s research interests span drug delivery systems, biomaterials science, and regenerative medicine. His lab explores cyclodextrin polymers for sustained antibiotic release, affinity-driven drug refilling mechanisms, and engineering biocompatible materials to combat implant-related infections. Recently, his team has investigated microbiome interactions with neural implants and developed polymer-based solutions for localized chemotherapy. Notable contributions include advancements in PMMA bone cement composites for drug refillable depots, cyclodextrin hydrogels for controlled release, and affinity-based systems for anti-fibrotic treatments. His work bridges materials science with clinical applications, addressing challenges in orthopedic infections, neural interfaces, and cardiovascular regeneration. Scientific achievements include over 100 peer-reviewed publications. Research funding has supported projects on antimicrobial coatings, drug delivery mechanics, and stem cell differentiation. Dr. von Recum collaborates across disciplines to translate biomaterial innovations into clinical solutions.
Ethan A. Scott is a Research Assistant Professor in the Department of Mechanical and Aerospace Engineering at the University of Virginia. He holds a B.S. (2015) and Ph.D. (2021) in Mechanical and Aerospace Engineering from UVA, followed by a postdoctoral research associate position at Sandia National Laboratories. His research focuses on experimental techniques for analyzing heat and energy transfer in extreme material conditions, including micro- and nanoscale phenomena. He serves as Deputy Director of the EXSiTE Lab led by Professor Patrick Hopkins. Education: B.S., Mechanical Engineering, University of Virginia (2015) Ph.D., Mechanical and Aerospace Engineering, University of Virginia (2021) Postdoctoral Research Associate, Sandia National Laboratories (2021–2023) Research Interests: Ethan explores advanced thermal transport phenomena using electro- and optothermal methods. Key areas include micro/nanoscale heat transfer, microfabrication, and infrared thermal detection. His work addresses challenges in material size extremes (e.g., nanoscale thin films) and environmental extremes (e.g., high-energy ion irradiation effects). Publications: His recent work emphasizes thermal conductivity manipulation through ion irradiation, optothermal sensor development, and novel material characterization. Themes include defect engineering in crystalline systems and optimizing thin-film thermometry for high sensitivity. Awards: Editor’s Pick, Applied Physics Letters (2021) Nuclear Regulatory Commission Fellowship (2017) Labs & Teams: Deputy Director of the EXSiTE Lab, focusing on experimental studies of thermal and mechanical properties of materials under extreme conditions.
Maria Pau Ginebra Molins is a Professor in the Department of Materials Science and Engineering at the Barcelona East School of Engineering (EEBE), Polytechnic University of Catalonia (UPC). She leads the BBT Research Group focused on Biomaterials, Biomechanics and Tissue Engineering and is affiliated with the Institute of Research and Innovation in Health. Her educational background, while not explicitly detailed in the provided text, reflects extensive expertise in materials science with a specialization in biomaterials, evidenced by her substantial research portfolio spanning over three decades. Professor Ginebra Molins' research spans biomaterials development, bone tissue engineering, and advanced manufacturing techniques. Her work focuses on calcium phosphate-based materials, 3D printing technologies for bone scaffolds, hydrogel systems, and surface modifications of biomaterials to enhance biological responses. She has pioneered approaches in vat photopolymerization, direct ink writing, and the development of stimuli-responsive biomaterials. Analysis of her recent publications (2024-2025) reveals a strong emphasis on translational research with clinical applications. Her work bridges fundamental materials science with practical medical solutions, particularly in bone regeneration, dental implants, and antimicrobial biomaterials. The publications demonstrate expertise in advanced characterization techniques, including spectroscopy and nanoindentation for biomaterial evaluation. Multiple competitive R&D projects including CEX2023-001300-M Maria Maetzu Centre Ciència i Enginyeria Multiescala 17 documented awards and recognitions Leadership in the Inspiring the next generation of innovators project Patents related to 3D-printed bone grafts Professor Ginebra Molins actively supervises doctoral students, with Johansson, L. completing a thesis on 3D-printed biomimetic bone grafts. Her research group (BBT) collaborates extensively with industry and clinical partners to translate laboratory findings into medical applications. She participates in numerous competitive research projects funded by national and European programs, demonstrating the high impact and relevance of her work in the biomaterials field.
Martin Saunders is an Associate Professor and leader of the Physical Science Electron Microscopy Platform at the University of Western Australia's Centre for Microscopy, Characterisation & Analysis (CMCA). He holds leadership roles in national microscopy consortia, including Microscopy Australia and the National Imaging Facility. His academic career spans over 20 years, with roles as Deputy Director and Acting Director of CMCA, and President of the Australian Microscopy and Microanalysis Society (AMMS). Saunders earned a PhD in Physics from the University of Bath (UK) and postdoctoral experience at institutions including the University of Bristol and the US Naval Postgraduate School. His research focuses on advanced electron microscopy techniques, including TEM, STEM, EELS, and tomography, applied across physical, biological, and geo sciences. Education: PhD in Physics (University of Bath, 1994), BSc in Applied Physics (University of Bath, 1990). Research interests include structural and chemical analysis of nanomaterials, biominerals, and geological samples. He collaborates globally, contributing to high-impact journals like Nature and Advanced Materials . Saunders has secured over $25M in grants from ARC, NHMRC, and NCRIS, funding cutting-edge microscopy infrastructure. Awards: Inaugural AMMS Fellow (2025), Life Membership (AMMS), Fellow of the UK Institute of Physics (2012). Teaching: Coordinates materials characterization courses for biomedical engineering and nanotechnology programs. Provides training in electron microscopy for researchers and postgraduates. Labs/Infrastructure: Manages state-of-the-art facilities including FEI Titan G2 80-200 TEM/STEM and DualBeam FIB-SEM systems at CMCA.
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.
Brian Kirby is the Meinig Family Professor in the Department of Mechanical Engineering at the College of Engineering, Cornell University. He is a leading researcher in microfluidics, biomedical engineering, and cancer diagnostics, with a strong emphasis on circulating tumor cells (CTCs), rare cell isolation, and biophysical forces in disease. His work bridges engineering, biology, and clinical medicine. Institution: Cornell University School: College of Engineering Department: Mechanical Engineering Rank: Professor Education: Stanford University, 2001 Brian Kirby's research focuses on developing and applying microfluidic technologies to solve biomedical challenges. His work centers on microfluidic rare cell capture , particularly circulating tumor cells (CTCs) , enabling early cancer detection and monitoring treatment response. He investigates biophysical forces such as shear stress and surface interactions in conditions like thrombosis and cancer metastasis. His lab also works on dielectrophoresis , acoustophoresis , and electrokinetics for cell separation and analysis. Additional interests include bioinstrumentation , lab-on-a-chip devices , and fluid mechanics in biological systems . His recent publications show a consistent focus on microfluidic diagnostics, cancer biophysics, and smart fluid systems. Articles span topics from CTC isolation in prostate and pancreatic cancers to thrombosis in medical devices and programmable viscosity metamaterials . The research integrates engineering design with clinical applications, often involving interdisciplinary collaboration. Scientific Awards: Creative Teaching Award, Cornell Center for Teaching Innovation Advising Award, College of Engineering, Cornell University, 2015 Research Award, College of Engineering, Cornell University, 2015 Brian Kirby is actively involved in advising and research mentorship. While specific student names are not listed in the provided text, his extensive publication record and leadership of a research group indicate active supervision of graduate students and postdoctoral researchers. His research is supported by grants related to cancer diagnostics, microfluidics, and biomedical engineering, though specific grant details are not provided. He has contributed to the development of novel microfluidic devices such as the GEDI (Geometrically Enhanced Differential Immunocapture) platform for CTC capture and functional analysis. Labs and Teams: Kirby leads a research laboratory at Cornell focused on microfluidics and biomedical instrumentation. His team develops and applies microfluidic platforms for clinical diagnostics, particularly in oncology and hematology. The lab collaborates with clinicians and scientists across disciplines to translate engineering innovations into medical applications.
Matthew Libera is a Professor of Material Science and Engineering at Stevens Institute of Technology, affiliated with the Charles V. Schaefer, Jr. School of Engineering and Science. He leads the Laboratory for Multiscale Imaging (LMSI), a shared facility for advanced imaging and analysis. His work focuses on biomaterials, hydrogels, infection-resistant surfaces, and electron microscopy techniques. Libera has held roles including Associate Dean of Engineering and Science (2013–2018) and has been a visiting professor at institutions like the University of Rhode Island (2021–2022). He chairs the Stevens Conference on Bacteria-Material Interactions and has authored numerous publications on antimicrobial surfaces and material characterization. His research interests span biomaterials-associated infections, directed self-assembly of polymers, and cryo-electron microscopy applications. He pioneered microgel-based antimicrobial coatings and developed molecular beacon technologies for diagnostics. Libera’s awards include the Morton Professorship for Teaching Excellence (2010–2011) and the Jess N. Davis Award for Research (1998). His work integrates nanotechnology, material science, and biomedicine to address challenges in infection prevention and biomaterial design. Libera’s publications highlight advancements in microgel functionality, surface patterning via electron-beam lithography, and antimicrobial delivery systems. His lab’s capabilities in multiscale imaging enable detailed studies of biomaterial-bacteria interactions. Ongoing efforts aim to optimize self-defensive materials for medical implants and diagnostic tools.
Dr. Salih Veziroglu is a post-doctoral researcher and subgroup leader at the Chair for Multicomponent Materials at Kiel University, under Prof. Franz Faupel. His research focuses on functional metal-oxide micro-/nanostructures, including thin films and particles, for applications in energy, self-cleaning surfaces, and sensing technologies. Notably, he has pioneered photocatalytic methods to create conductive metal patterns on titanium dioxide substrates, mimicking axon growth and enabling advanced biomedical and electronic systems. Veziroglu earned his doctoral degree in Materials Science from Kiel University in 2020, supported by Federal State Funding. His work integrates nanomaterial synthesis, surface functionalization, and interdisciplinary applications. Key areas include 3D porous cerium oxide networks for catalysis, superhydrophobic coatings, and biomedical materials like algae-incorporated polylactide acid patches for tissue engineering. His research highlights include strain-invariant all-organic conductors developed with Prof. Adelung's team, and novel methods for gold deposition on titanium dioxide using light-driven processes. These innovations address challenges in energy storage, environmental remediation, and medical device coatings. Veziroglu’s subgroup actively explores gas-phase synthesis techniques, plasma treatments for biofilm decontamination, and material design for high-performance applications. Publications span topics like additive manufacturing of titanium alloys, photocatalytic nanoparticle synthesis, and biomedical coatings. His work emphasizes practical solutions for sustainability and healthcare, driven by advanced material chemistry.