Dr. Shirley Coyle is an Assistant Professor in the School of Electronic Engineering at Dublin City University (DCU) and Programme Chair for the BSc Global Challenges. She holds a BEng in Electronic Engineering from DCU (2000) and a PhD in Biomedical Engineering from NUI Maynooth (2005). Her career includes roles as a Telecoms Engineer at Siemens, Research Fellow at the National Centre for Sensor Research, and Team Leader of Wearable Sensors in the INSIGHT Centre for Data Analytics. She also studied part-time at the Grafton Academy for Fashion Design and later founded a consultancy in wearable technologies. Her research focuses on smart garments, wearable sensors, and sustainable textiles, with applications in healthcare, sports performance, and S.T.E.A.M. integration. Key interests include developing wearable chemical sensors, energy-autonomous sensing systems, and IoT-enabled rehabilitation devices. She has pioneered work on wearable sensors for monitoring chronic diseases, athlete training, and home rehabilitation using VR. Dr. Coyle’s work spans interdisciplinary collaboration, combining biomedical engineering with textile design. Her contributions include innovations in electrospun textiles, self-powered sensors, and sensor integration with microfluidics. She has held leadership roles in DCU’s Governing Authority and promotes STEM education through design-focused initiatives.
André Bardow is a Full Professor at the Department of Mechanical and Process Engineering, ETH Zürich. His research focuses on energy systems optimization, life cycle assessment, computer-aided molecular design, and CO2 capture/utilization. Professor (ETH Zürich, 2020–present) Head of Institute of Technical Thermodynamics (RWTH Aachen University, 2010–2020) Visiting Professor (University of California, Santa Barbara, 2015/16) Part-time Director (Forschungszentrum Jülich, 2017–2022) Associate Professor (TU Delft, 2007–2010) Research Interests: His work spans energy and process systems engineering, with emphasis on sustainable technologies. Key areas include: Computer-aided molecular and process design Machine learning for chemical engineering Carbon capture and utilization (CCU) Life cycle assessment (LCA) of industrial processes Thermo-economic modeling of energy systems Multiphase equilibrium analysis Publication Trends: Recent articles focus on integrating machine learning with process design, optimizing CO2 capture in steel production, and advancing electrochemical cooling technologies. Subfields include sustainable plastics, ORC working fluids, and solvent mixture design. Scientific Awards: Fellow of the Royal Chemical Society Recent Innovative Contribution Award (EFCE, 2019) PSE Model-Based Innovation Prize (2018) Covestro Science Award (first recipient) Arnold-Eucken-Award (VDI-GVC) Highly Cited Researcher (Clarivate, 2024) Advising and Grants: Professor Bardow mentors students in process optimization and leads projects like Systemic expansion of territorial CIRCULAR Ecosystems for end-of-life FOAM (Grant 101036854, EC).
Joerg Werner is an Assistant Professor of Mechanical Engineering at Boston University's College of Engineering and Core Faculty at the Institute for Global Sustainability (IGS). He holds a PhD in Materials Chemistry from Cornell University and an MS in Chemistry from Johannes Gutenberg University Mainz. His research focuses on mesostructured materials, functional nanomaterials, and energy storage systems, leveraging block copolymer self-assembly and microfluidics to design advanced materials. He leads the Mesostructured Materials and Devices Lab, exploring hierarchical structures, electrochemical polymers, and sustainable manufacturing. Research Interests: Werner’s work spans 3D nano-interdigitated batteries , mesostructured architectures , and dynamic microcapsules . Key areas include energy storage applications, phase separation of complex fluids, and nanoconfined synthesis. His group develops sustainable templates for nanomaterials and electrochemically active polymers for thin films on 3D substrates. Publications Trends: Recent work emphasizes electrode architectures (e.g., low-tortuosity electrodes), responsive microcapsules , and self-assembly-driven superconductors . Collaborations with labs like Harvard and industry partners highlight applied energy solutions. Funding & Labs: Current grants support projects on mesohybrids and architected electrodes. The MeMaD Lab collaborates on projects like PANDA (self-driving lab for polymer films) and advanced battery designs. Patents include solid-state battery assemblies and mesoporous carbon materials.
Laureate Professor Behdad Moghtaderi is a globally recognized chemical engineer at The University of Newcastle's School of Engineering. He leads research in clean energy technologies, including the GRANEX heat engine, greenhouse gas abatement, and chemical looping processes. His work addresses critical challenges in energy efficiency, renewable energy systems, and reducing fugitive methane emissions from coal mines. With over $48M in research funding and 220+ publications, he directs the Newcastle Institute for Energy and Resources (NIER) and holds leadership roles in national and international energy initiatives. Education: PhD (University of Sydney), MEng (University of Sydney), BSc (Shiraz University) Administrative Roles: Director of NIER, former Head of School of Engineering, and member of global energy advisory bodies Research interests span energy systems, combustion science, and sustainable technologies. Notable innovations include the VAMCO system for methane abatement and solar thermal GRANEX installations. Awards include the Carrick Teaching Citation and multiple engineering excellence recognitions. Scientific contributions include 14 PhD completions and over 20 funded projects. Current focus areas include hydrogen safety, carbon capture, and thermochemical energy storage. His labs (NIER) collaborate with industry partners like Siemens Energy and the Australian Hydrogen Council.
Jennifer Lewis is the Hansjorg Wyss Professor of Biologically Inspired Engineering and Jianming Yu Professor of Arts and Sciences at Harvard University's Harvard John A. Paulson School of Engineering and Applied Sciences (SEAS). Her research focuses on bioengineering, materials science, and advanced manufacturing, with emphasis on 3D-printed functional materials, organoids, and soft robotics. She leads the Lewis Research Group, which develops biomimetic technologies for regenerative medicine, energy systems, and robotics. Lewis holds appointments in SEAS, the Department of Chemistry and Chemical Biology, and the Wyss Institute for Biologically Inspired Engineering. Her research areas include applied mathematics, fluid mechanics, soft matter physics, and bioengineering applications such as kidney organoid models, vascularized tissues, and programmable materials. Notable innovations include kidney organoid-on-chip systems for drug testing, 3D-printed liquid crystal elastomers, and bioprinted cardiac tissues. Lewis was awarded the 2025 James Prize in Science and Technology Integration for pioneering interdisciplinary research. Her lab's projects span organ building blocks, immune-response modeling in transplanted tissues, and acoustophoretic printing techniques for high-resolution bioprinting. Collaborations include the NIH Somatic Cell Genome Editing Program and industry partnerships for bioprosthetic valve research. She advises on grants totaling over $20M and mentors a multidisciplinary team of postdocs and graduate students in materials science, biomedical engineering, and mechanical engineering. Lewis' lab facilities include the Pierce Hall lab (Cambridge) and Allston SEAS campus, with state-of-the-art 3D printing systems, microfluidics platforms, and bioreactors for organoid culture. Current projects aim to engineer functional human tissues for therapeutic applications and develop smart materials with programmable mechanical/chemical responses.
Lukas Hiendlmeier is a Researcher at the Technical University of Munich, affiliated with the Munich Institute of Biomedical Engineering (MIBE) and the Associate Professorship of Neuroelectronics led by Prof. Bernhard Wolfrum. He holds a Master of Science in Mechanical Engineering from TUM. His research focuses on advanced fabrication technologies such as 3D printing, laser micromachining, and polymer material science, with applications in neuroelectronics and biomedical devices. Hiendlmeier’s work emphasizes developing self-folding bioelectronic interfaces, flexible electrodes, and implantable neural devices for peripheral nerve interfacing. His contributions include innovations in 4D printing techniques, thermoformed materials, and origami-inspired electrode designs. He collaborates on projects involving cell manipulation, microfluidic lab-on-a-chip systems, and closed-loop neural stimulation systems. Publications span topics like self-folding bioelectronics, flexible sensor arrays, and nanorobotics, showcasing expertise in materials science and biomedical engineering. His research bridges fundamental science and translational applications, addressing challenges in neural prosthetics, wearable diagnostics, and tissue engineering. Hiendlmeier is actively involved in the neuroTUM initiative and contributes to interdisciplinary teams at TUM, focusing on advancing neurotechnology through innovative fabrication methods and biomaterials.
Prof. Silvia Vignolini is a leading researcher in sustainable and bio-inspired materials. Since January 2023, she has served as Director at the Max Planck Institute of Colloids and Interfaces , where she leads the department of Sustainable and Bio-inspired Materials . Her academic career includes a Lecturer in Physics at University College London (2013-2017) and a Professor of Biomaterials and Sustainability at the University of Cambridge (2020-2022). Education: University of Florence (Physics, PhD) Postdoctoral Research: University of Florence , University of Cambridge Her research bridges chemistry , soft matter physics , optics , and biology , focusing on the self-assembly of natural materials into functional architectures. She pioneered work on cellulose-based photonic materials with applications in displays, pigments, and radiative cooling. The selected articles highlight her work on cellulose nanocrystals , structural coloration , and sustainable fabrication techniques . Key trends include mechanochromic hydroxypropyl cellulose systems, bio-inspired light management, and applications in microalgae growth and bacterial symbiosis. Scientific Awards : Philip Leverhululme Prize (2019) ACS Lectureship in Sustainable Chemistry (2018) Ipazia Prize for Women in Science (2012) PhD Thesis Award (University of Florence, 2009) At the Max Planck Institute, her interdisciplinary research group explores bio-inspired design principles for sustainable materials, combining experimental and computational approaches to create functional materials from natural resources.
Daeyeon Lee is a Professor in the Department of Chemical and Biomolecular Engineering at the University of Pennsylvania and holds the Russell Pearce and Elizabeth Crimian Heuer Professorship. He leads the Soft Materials Research and Technology (SMART) Lab, focusing on interdisciplinary research in soft materials, microfluidics, and biomedical applications. His work spans gas-encapsulating microcapsules, nanozyme-shelled microrobots, and AI-empowered droplet synthesis. Research Interests : Soft materials, polymer-nanoparticle interactions, microfluidics, targeted drug delivery, and AI-driven manufacturing. Grants : NSF Artificial Intelligence-driven RNA BioFoundry (NSF AIRFoundry), Wellcome Leap contract for lipid nanoparticle research. Scientific Awards : Penn CBE Distinguished Teaching Award, 2022 Outstanding Achievement Award in Nanoscience, Nemirovsky Engineering and Medicine Opportunity (NEMO) Prize. The SMART Lab has produced notable publications in ACS Nano , Advanced Healthcare Materials , and Science Advances , with recent work on biofilm treatment, water harvesting, and RNA-lipid nanoparticle manufacturing. The lab relocated to the Vagelos Laboratory for Energy Science and Technology (VLEST) in 2024 and collaborates with institutions like the Technical University of Munich and Carnegie Mellon University.
Dist. Professor Leslie Yeo is a distinguished faculty member at RMIT University's School of Engineering, where he leads the Micro/Nanophysics Research Laboratory (MNRL). With a PhD from Imperial College London (2002), he has held positions at Monash University and the University of Notre Dame before joining RMIT. His research focuses on the interactions between high-frequency sound waves and matter at micro and nanoscales. Leslie Yeo's educational background includes a PhD from Imperial College London (2002), where he received the Dudley Newitt prize for outstanding computational/theoretical work. Prior to his academic career, he worked as a Mathematical Modeller at Det Norske Veritas UK. He held prestigious Australian Research Fellowships (2009-2017) that supported his groundbreaking work in micro and nanophysics. Professor Yeo's research interests center around high-frequency (MHz order) sound waves interacting with various materials including fluids, two-dimensional and bulk crystals, biomolecules, cells and microorganisms. His work explores both fundamental physicochemical phenomena and practical applications in microfluidics, drug delivery, diagnostics, tissue engineering, and materials synthesis. His research has significant implications for health technologies, environmental applications, and sustainable energy solutions, aligning with UN Sustainable Development Goals 3 (Good Health and Well-Being) and 7 (Affordable and Clean Energy). Analysis of Professor Yeo's recent publications reveals a strong focus on acoustofluidics and its diverse applications. His work demonstrates expertise in using surface acoustic waves for bacterial inactivation, synthesis of metal-organic frameworks, cell membrane manipulation, and energy conversion technologies. The research spans multiple disciplines including biomedical engineering, materials science, and environmental technology, with particular emphasis on practical applications that address real-world challenges. 2023: Fellowship of the Institution of Engineering & Technology (FIET) 2021: RMIT University Science, Technology, Engineering & Medicine College Research Impact Award 2019: RMIT University Distinguished Professorship 2018: RMIT University Vice-Chancellor's Award for Research Excellence 2016: Johnson & Johnson World Without Disease Quickfire Challenge Award 2007: Young Tall Poppy Science Award Professor Yeo has supervised numerous research students across engineering and science disciplines, with current projects focusing on acoustomicrofluidic synthesis of nanomaterials, high-frequency mechanobiology applications, and diagnostic technologies. His editorial roles include Editor-in-Chief of the American Institute of Physics journal Biomicrofluidics and Associate Editor of Frontiers in Bioengineering & Biotechnology. His work has been widely featured in media outlets including ABC's Catalyst, The Economist, and Nature. The Micro/Nanophysics Research Laboratory under Professor Yeo's leadership is at the forefront of fundamental and applied research on nonlinear high-frequency electroacoustic interactions. The laboratory has discovered novel physicochemical phenomena and actively develops theories to explain the fundamental mechanisms behind these discoveries, with applications ranging from medical diagnostics to sustainable energy solutions.
Associate Professor Arnold Lining Ju is a biomedical engineer at the University of Sydney's School of Biomedical Engineering, affiliated with multiple institutes including the Heart Research Institute and Sydney Nano Institute. He holds academic positions in both the Faculty of Engineering and Faculty of Medicine & Health. Education: BSc from Peking University, PhD from Georgia Tech and Emory University (USA). Honors include Snow Fellowship, Heart Foundation Future Leader Fellowship, and multiple awards for cardiovascular research innovation. Research focuses on mechanobiology and biomechanics of thrombosis, developing microfluidic devices and organ-on-chip systems. Key projects include AI-driven single-cell nanotools, 3D biofabrication, and anti-thrombotic peptide design. Leads interdisciplinary teams and collaborates internationally with institutions like Harvard and University of Texas. Teaching roles include coordinating advanced cellular biomechanics courses and supervising PhD/Masters students in biomedical engineering and physiology. Over 50 peer-reviewed publications, with contributions to Nature Materials, Nature Communications, and other top journals.
Pengyu Chen is Francis Family Associate Professor and Ginn Faculty Achievement Fellow in Materials Engineering at Auburn University. His NIH-funded research develops nanoplasmonic biosensors for rapid disease diagnosis and immune monitoring, with applications in precision medicine and cancer immunotherapy. Research focuses on: Rapid diagnostic technologies for COVID-19 and other diseases Single-cell analysis platforms Nanoparticle-based cancer therapies Food/environmental safety monitoring Recent publications demonstrate innovations in nanoplasmonic sensing, targeted drug delivery, 3D-printed implants, and tumor microenvironment analysis. His work integrates nanotechnology, immunology, and microfluidics for biomedical applications.
Prof. Jürgen Rühe is a Full Professor of Chemistry and Physics of Interfaces at the Institute of Microsystems Technology, Albert Ludwigs University of Freiburg, within the Faculty of Engineering. He serves as Deputy Coordinator of Research Area C and Principal Investigator for Research Areas A, B, C, and D. His expertise spans polymers at interfaces, metamaterials, biomedical surfaces, and self-healing materials. He leads the Cluster of Excellence liv MatS, focusing on adaptive and energy-autonomous materials systems. Education: Not explicitly stated in text. His research emphasizes programmable materials, 4D printing, and bioinspired design, with projects funded by the German Research Foundation (DFG). Notable contributions include anti-fog coatings, magnetic microactuators for cell stimulation, and hygromorphic materials for adaptive architecture. He supervises doctoral and postdoctoral researchers, advancing fields like tribology and surface functionalization. Key scientific achievements include developing C,H-insertion cross-linking (CHic) for durable polymer networks and exploring smart materials for biomedical and environmental applications. His work bridges fundamental polymer chemistry with practical applications in energy, healthcare, and sustainable architecture. He advises over ten doctoral students and collaborates with industry partners. His lab, part of the Institute of Microsystems Technology, focuses on micro- and nanostructuring, with projects funded by the Cluster of Excellence.
Nadia Shardt is an Associate Professor in the Department of Chemical Engineering at the Norwegian University of Science and Technology (NTNU). Her research focuses on interfacial thermodynamics, particularly in systems with nanoscale curvature, with applications spanning atmospheric science, biomedical cryopreservation, and industrial process optimization. She contributes to teaching courses such as TKP4580 - Chemical Engineering Specialization Project and KP3100 - Chemical Engineering . PhD in Chemical Engineering (University of Alberta, 2019) BSc in Chemical Engineering (University of Alberta, 2015) Postdoctoral researcher at ETH Zurich (2020-2022) Her work addresses fundamental challenges in phase behavior under curvature constraints, combining microfluidic experimentation , Gibbsian thermodynamic modeling , and machine learning techniques to study systems like CO 2 storage media, cloud microphysics, and food emulsions. Recent publications emphasize surface tension modeling for complex multi-component systems and cryoprotectant loading efficiency. Scientific awards include the ETH Postdoctoral Fellowship Natural Sciences and Engineering Research Council of Canada (NSERC) Postdoctoral Fellowship Outstanding Academic Fellows Programme 2024-2028
Regina Ragan is a Professor in the Department of Materials Science and Engineering at the Samueli School of Engineering, University of California, Irvine. Her research focuses on nanomaterials, self-assembly, and surface-enhanced Raman scattering (SERS) for applications in optical communication, energy systems, and biomedical diagnostics. Education: Ph.D. in Applied Physics, California Institute of Technology, 2002 M.S. in Applied Physics, California Institute of Technology, 1998 B.S. in Materials Science and Engineering, University of California, Los Angeles, 1996 Her work integrates scanning probe microscopy and first-principles calculations to study thermodynamic driving forces in self-assembly and structure-function relationships. Recent publications highlight applications in antimicrobial susceptibility testing, environmental monitoring, and plasmonic device fabrication. The Ragan group develops low-cost diagnostic tools using SERS for telemedicine applications. Current lab members include graduate students and postdoctoral researchers working on nanoscale systems from atomic to mesoscale. Scientific Awards: NSF CAREER Award for fundamental studies of biological/inorganic interfaces Research Trends: Recent articles show a focus on SERS-based diagnostics, plasmonic nanoantennas, machine learning-assisted spectral analysis, and scalable synthesis of 3D graphene architectures. Subfields span quantum plasmonics, stress-activated materials, and biofilm monitoring.
Cecilia Leal is a Professor and Racheff Faculty Scholar in the Department of Materials Science and Engineering at the University of Illinois at Urbana-Champaign, with additional appointments at the Carle Illinois College of Medicine, Materials Research Laboratory, and Beckman Institute. Her interdisciplinary research program bridges materials science, biophysics, and medicine to develop innovative therapeutic delivery systems. Dr. Leal's research focuses on the self-organization of biomolecular systems, particularly lipid membranes, peptides, and nucleic acids. Her lab investigates how structural complexity of lipids and bio-membranes relates to disease mechanisms and informs the design of better gene and drug delivery systems. Key projects include developing lipid nanoparticles for mRNA delivery, studying polymer-lipid hybrid membranes, and characterizing lipid droplet dynamics in metabolic diseases. The lab employs advanced techniques including Small Angle X-ray Scattering, Cryo-EM, and live cell imaging. Her recent publications (2023-2025) reveal a strong emphasis on lipid-based delivery systems for mRNA therapeutics and cancer treatment, with particular attention to how nanostructure affects delivery efficiency. The research spans from fundamental biophysics of lipid-polymer interactions to applied therapeutic development, demonstrating consistent translation of basic science to medical applications. University of Illinois Provost's Distinguished Promotion to Full Professor Award (2024) University of Illinois Scholar (2023) NIH New Innovator Award (2016) NSF CAREER Award (2016) Racheff Faculty Scholar Award (2019) Dr. Leal has mentored numerous graduate students and postdocs, many now in prominent positions at MIT, Stanford, Dow Chemical, and pharmaceutical companies. Her research is supported by multiple NIH and NSF grants, and she maintains active collaborations with medical researchers studying obesity, cancer, and respiratory diseases. She teaches core courses including MSE 201 (Phases and Phase Relations) and MSE 473 (Biomolecular Materials Science), consistently earning excellent teaching ratings. The Leal Lab operates as an interdisciplinary team of materials scientists, physicists, and chemists using cutting-edge characterization tools to solve biomedical challenges. The lab's work on lipid nanoparticle structure has direct relevance to next-generation mRNA vaccines and cancer therapies, with several publications highlighted in C&EN News and other prominent scientific media.