Professor Jacqueline Cole holds the Royal Academy of Engineering Research Professorship in Materials Physics at the University of Cambridge, where she is Head of the Molecular Engineering Group. She has a joint appointment between the Department of Physics (Cavendish Laboratory) and the Department of Chemical Engineering and Biotechnology, while being 50% seconded to the ISIS neutron and muon facility at the STFC Rutherford Appleton Laboratory. Her research integrates artificial intelligence, data science, computational methods, and experimental techniques to develop sustainable energy materials through a 'design-to-device' pipeline.
Katrin Schollbach is an Assistant Professor in the Building Materials department at Eindhoven University of Technology's School of Built Environment . Her research focuses on sustainable utilization of industrial by-products in construction materials, particularly steel slags from fossil-free steelmaking processes. Expertise: BOF slag activation, carbonation resistance, heavy metal immobilization, eco-friendly binders Projects: Leading the SLAK project (2023-2029) on future slags from fossil-free steelmaking Collaborations: Active international collaborations in construction materials research Schollbach's work explores the chemical and mineralogical properties of industrial waste materials, optimizing their performance in building applications. Key research themes include chemical activation techniques, carbonation processes, and material characterization using scanning electron microscopy and X-ray diffraction. Recent publications highlight her innovative approaches to BOF slag activation, sewage sludge-based sealing materials, and marine infrastructure applications. Her research output demonstrates consistent growth with 89 total publications and collaborations across multiple disciplines. She contributes to education through courses like Climate-responsive Building Design and Masterproject BPS Research , and maintains active research partnerships with institutions worldwide.
Nishant Garg is an Assistant Professor in the Department of Civil and Environmental Engineering at the University of Illinois at Urbana-Champaign. His research focuses on sustainable construction materials, particularly cement-based systems, leveraging advanced characterization techniques such as X-ray scattering, neutron diffraction, and Raman imaging. His work addresses environmental sustainability through innovations in low-carbon materials, waste utilization, and durability enhancement. Education: Ph.D. in Nanoscience, Aarhus University (2015) M.S. in Civil Engineering Materials, Iowa State University (2012) B.E. and Diploma in Civil Engineering, Thapar Institute of Engineering & Technology and Chandigarh College of Eng. & Tech. (2010, 2007) Research Interests: Sustainable cement chemistry, material characterization, carbonation processes, and development of eco-friendly construction materials. His lab, the Garg Group, emphasizes multi-scale analysis (nano-to-macro) to bridge fundamental science and practical applications. Key Contributions: Innovations include the UR2 test for cement reactivity, SorpVision for automated sorptivity assessment, and VR tools for materials education. These advances aim to reduce costs, improve material performance, and promote circular economy practices. Awards and Roles: Dean’s Award for Excellence in Research (2025) Member, Transportation Research Board AKM 50 Committee (2025–Present) Recipient of American Ceramic Society’s Stephen Brunauer Award (2021) Advising and Grants: Actively recruiting MS/Ph.D. students. Leads initiatives on low-carbon concrete, funded by NSF and industry collaborations. Serves on CEE advisory committees and graduate admissions. Labs/Teams: The Garg Group integrates interdisciplinary approaches, collaborating with materials scientists, engineers, and data scientists to tackle global infrastructure challenges.
Sarah Köster is a Full Professor at the University of Göttingen’s Institute for Cellular and Molecular Physiology of the Brain. She earned her PhD from the University of Göttingen under Prof. Stephan Herminghaus and completed postdoctoral research at Harvard University with Prof. David Weitz. Her career includes appointments as Junior Professor (2008-2011), Associate Professor (2011-2017), and Full Professor (since 2017). Research focuses on cellular biophysics, particularly cytoskeletal mechanics and intermediate filament dynamics. Key investigations include keratin plasticity, vimentin network mechanics, cytoskeletal crosstalk, and DNA organization during cell division. Her publications demonstrate expertise in nanoscale biomechanics, utilizing techniques like nanoindentation, X-ray diffraction, and advanced microscopy to probe cellular structures. Recent work emphasizes multiscale mechanical properties of cytoskeletal networks and their functional implications.
Dr. Qingbo Sun is a researcher at the Department of Materials Physics, Australian National University, specializing in advanced materials for energy and electronic applications. His work focuses on defect engineering, dielectric materials, and photovoltaic effects in nanocrystalline systems. Research interests include: Defect-driven local symmetry breaking Colossal dielectric permittivity Photocatalytic heterojunctions High-pressure material transformations Doping strategies in semiconductors Nonlinear electric polarization Research trends from his publications highlight innovations in TiO2-based photocatalysts, SnO2 dielectrics, and ferroelectric heterostructures. Collaborations span materials synthesis, computational modeling, and international experimental studies. His work is cited extensively in Scopus with 294 citations.
John Heron is an Associate Professor in the Department of Materials Science and Engineering at the University of Michigan. His research focuses on epitaxial growth of complex oxide thin films and heterostructures to engineer new electronic phenomena for next-generation devices. B.S. in Physics, University of California, Santa Barbara (2007) M.S. in Materials Science and Engineering, University of California, Berkeley (2011) Ph.D. in Materials Science and Engineering, University of California, Berkeley (2013) His work explores ferroic materials like (anti)ferromagnets and (anti)ferroelectrics, utilizing techniques such as X-ray diffraction, scanning probe microscopy, and magnetotransport measurements. The Ferroelectronics Lab (http://ferroelectronicslab.com) employs in-situ transfer systems for high-quality oxide and metal growth. Recent publications emphasize magnetoelectric switching, entropy-stabilized oxides, and spintronic devices. Current teaching includes MSE500 Materials Physics and Chemistry. No explicit scientific awards or students are listed in the provided texts.
Ivana Brekalo is a Researcher at the Ruđer Bošković Institute in Zagreb, Croatia, affiliated with the Division of Physical Chemistry and the Laboratory for Applied and Sustainable Chemistry. She holds a Ph.D. in Chemistry from Georgetown University (2019), with a thesis on "Solid State Synthesis and Study of Porous Materials," and completed her Master's (2012) and Bachelor's (2010) degrees in Chemistry at the University of Zagreb. Her work bridges mechanochemistry and materials science, focusing on scalable synthesis methods for functional materials. Doctor of Philosophy, Chemistry, Georgetown University (2013–2019) Master of Science, Chemistry, University of Zagreb (2010–2012) Bachelor of Science, Chemistry, University of Zagreb (2007–2010) Her research emphasizes mechanochemical synthesis, particularly for porous materials like metal-organic frameworks (MOFs) and coordination polymers. She explores solvent-free methods, polymorphism control, and the role of gas-phase catalysts in solid-state reactions. Recent publications highlight thermally controlled milling for agrochemical cocrystals, conductivity in alkali metal coordination polymers, and real-time monitoring of mechanochemical processes. Key publications include Nature Reviews Chemistry perspectives on advanced mechanochemical synthesis and Inorganic Chemistry studies on low-dimensional magnetism in MOF-74 materials. Her work appears in journals like ACS Sustainable Chem. Eng. and Chemical Science , with a focus on green and scalable methods. Scientific Awards Scholarship of the Polish National Agency for Academic Exchange – Ulam Programme (2020) Bepina Sabalić Kunin Fellowship (2013-2015, 2017-2018) Ludo Frevel Crystallography Scholarship, IUCr (2017) CCDC award for best presentation (2022) Brekalo contributes to outreach as the 2019 ACS Volunteer of the Year and has received recognition for her work on solvent-free polymorphism and mechanochemical templation of ZIFs.
Debbie Senesky is an Associate Professor at Stanford University in both the Aeronautics and Astronautics Department and the Electrical Engineering Department, as well as a Senior Fellow at the Precourt Institute for Energy. She serves as the Principal Investigator of the EXtreme Environment Microsystems Laboratory (XLab) and Site Director of nano@stanford. Dr. Senesky received her B.S. in mechanical engineering from the University of Southern California (2001), followed by M.S. (2004) and Ph.D. (2007) degrees in mechanical engineering from the University of California, Berkeley. Prior to joining Stanford, she held positions at GE Sensing (formerly NovaSensor), GE Global Research Center, and Hewlett Packard. Her research focuses on developing nanomaterials and electronic systems capable of operating in extreme environments, including high-temperature conditions for Venus exploration, microgravity synthesis of nanomaterials, and harsh environment electronics. Dr. Senesky's work bridges multiple disciplines, connecting aerospace engineering, electrical engineering, materials science, and space technology to solve challenges in extreme environment applications. Dr. Senesky has made significant contributions to the field of high-temperature electronics, GaN-based sensors, graphene aerogel synthesis in microgravity, and materials for space applications. Her recent publications demonstrate a strong focus on practical applications of these technologies, particularly for space exploration and extreme environment sensing. Presidential Early Career Award for Scientists and Engineers (PECASE), NASA (2025) Emerging Leader Abie Award from AnitaB.org (2018) Early Faculty Career Award from NASA (2012) Gabilan Faculty Fellowship Award (2012) Sloan Ph.D. Fellowship (2004-2006) Dr. Senesky actively advises students at all levels, from undergraduate to postdoctoral researchers, and has established herself as a leader in promoting diversity in STEM through her role as Faculty Advisor for the Stanford Chapter of the National Society of Women Engineers. Her collaborative approach is evident in her numerous interdisciplinary projects and partnerships with NASA, industry, and other research institutions. She directs the EXtreme Environment Microsystems Laboratory (XLab), which focuses on developing technologies for operation in extreme environments including high temperature, radiation, and microgravity conditions. The lab's work has applications for space exploration, particularly for Venus missions, as well as terrestrial applications requiring robust electronics.
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 .
Suresh K. Sitaraman is a Regents' Professor and Morris M. Bryan, Jr. Professor in Mechanical Engineering at the Georgia Institute of Technology's George W. Woodruff School of Mechanical Engineering. His primary research focuses on Computer-Aided Engineering (CAE) and Design, manufacturing processes, micro/nano engineering, and mechanics of materials. He leads the Computer-Aided Simulation of Packaging Reliability (CASPaR) Lab and is involved in flexible hybrid electronics research through the Flexible Electronics Center . Dr. Sitaraman holds a Ph.D. from The Ohio State University (1989), M.A.Sc. from the University of Ottawa (1985), and B.E. from the University of Madras (1982). His research includes developing novel techniques like fixtureless magnetic actuation for interfacial fracture testing, compliant micro-scale interconnects for stress mitigation, and synchrotron X-ray diffraction analysis for through-silicon vias (TSVs). He has pioneered studies on carbon nanotube forests' mechanical properties and reliability challenges in 3D microsystems. His awards include the NSF CAREER Award (1997-2002), ASME Fellow designation (2004), and Sigma Xi Sustained Research Award (2008). He has authored over 150 publications and holds multiple patents on compliant interconnect technologies and packaging reliability solutions. Key Research Themes: Micro/nano-scale material characterization, physics-based predictive modeling, flexible electronics, 3D integration, and thermal management. Labs/Initiatives: CASPaR Lab ( caspar.gatech.edu ), Flexible Hybrid Electronics Center. Industry Impact: Contributions to semiconductor packaging, wearable electronics, and advanced manufacturing techniques.
Bridget R Rogers is an Associate Professor in the Department of Chemical and Biomolecular Engineering at Vanderbilt University's School of Engineering. Her research focuses on surfaces, interfaces, and films of advanced materials, linking processing parameters to material properties and performance in applications like CMOS transistors, hypersonic flight composites, and harsh-environment coatings. Education: Ph.D., Chemical Engineering, Arizona State University M.S., Chemical Engineering, Arizona State University B.S., Chemical Engineering, University of Colorado Research Interests: Her work employs techniques such as UHV-CVD, spectroscopic ellipsometry, and ion beam backscattering to study thin films of alumina/zirconia for dielectrics and ultra-high-temperature ceramics (e.g., Hf(Zr)B₂/SiC) for hypersonic systems. Applications target aerospace and electronics sectors. Labs/Equipment: Utilizes specialized facilities including a UHV-CVD reactor, TEM for cross-sectional analysis, and x-ray diffraction systems.
Reto Gieré is a Professor in the Department of Earth and Environmental Science at the University of Pennsylvania's School of Arts & Sciences. He holds editorial roles as Editor of the Journal of Petrology and Chief Editor of the European Journal of Mineralogy. His research focuses on environmental geochemistry, energy systems, mineralogical processes, and health impacts of pollutants. He has held academic positions at institutions including ETH Zürich, Purdue University, and the University of Basel. Education: PhD in Mineralogy and Petrology (ETH Zürich), Habilitation in Earth Sciences (University of Basel) Research Interests: Biogeochemistry, sustainable materials, atmospheric pollution, and global environmental change Key projects include investigations into tire-abrasion microplastics, charcoal sustainability in sub-Saharan Africa, and lead pollution dynamics in Philadelphia. He has received honors such as the Honorary Doctorate from Université de Haute-Alsace and Fellowships from major geological societies. Grants/Advising: Active in international projects like BIOCOMBUST (EU-funded biofuel research) Labs: Directs the Geochemistry Lab at UPenn, focusing on mineral-environment interactions
Benedikt Günther is a research scientist at the Technical University of Munich (TUM) working within the Chair of Biomedical Physics led by Prof. Dr. Franz Pfeiffer. His research focuses on the Munich Compact Light Source (MuCLS), a laboratory-scale inverse Compton X-ray source that provides synchrotron-like radiation for biomedical applications. Günther plays a key role in developing, optimizing, and characterizing this innovative technology, contributing to both its fundamental physics and practical medical applications. His primary research interests center around X-ray physics and imaging techniques, particularly laser enhancement cavities for inverse Compton X-ray sources, X-ray microscopy, dynamic phase-contrast imaging, and X-ray spectroscopy. Günther's work bridges fundamental physics with practical medical applications, developing instrumentation that brings synchrotron-quality imaging to conventional laboratory settings. His research has significant implications for improving medical diagnostics while making advanced imaging techniques more accessible. Analysis of Günther's publication record reveals a consistent focus on advancing compact X-ray source technology and its applications. His work demonstrates expertise in both theoretical modeling and experimental implementation, with publications spanning instrument development, imaging techniques, and specific medical applications. The research shows progression from fundamental source characterization to increasingly sophisticated biomedical applications, particularly in breast imaging, dental diagnostics, and materials science. 2019 Best Poster Award at the combined meeting of the 68th Denver X-ray Conference (DXC) & 25th International Congress on X-ray Optics and Microanalysis (ICXOM) for 'Full-Field Structured Illumination Super-Resolution X-ray Transmission Microscopy' Günther regularly presents his work at major international conferences including the International Particle Accelerator Conference, High-Brightness Sources and Light-driven Interactions Congress, and specialized X-ray imaging meetings. His research is conducted within the Munich Compact Light Source facility, a collaborative project involving physicists, engineers, and medical researchers working to develop laboratory-scale synchrotron technology for widespread biomedical use.
Prof. Stefan Eisebitt is a Director at the Max-Born-Institut für Nichtlineare Optik und Kurzzeitspektroskopie and holds a Professorship in Experimental Physics at the Technische Universität Berlin. His research focuses on ultrafast magnetization dynamics, nanoscale structure analysis, and novel imaging techniques using coherent XUV/X-ray spectroscopy. He leads the Transient Electronic Structure and Nanoscience group and is involved in cutting-edge projects involving femtosecond laser-driven X-ray sources and spintronic materials. Education and Career: He obtained his Diplom (1992) and Ph.D. (1996) from Cologne University, followed by postdoctoral research at the University of British Columbia and Forschungszentrum Jülich. He became a Privatdozent at Humboldt-Universität Berlin (2005) and held professorships at TU Berlin (2008–2015) and Lund University (2012–2015) before his current role since 2015. He leads the Functional Nanomaterials joint research group between Helmholtz-Zentrum Berlin and TU Berlin. Research Interests: His work spans transient electronic structure, ultrafast optical manipulation of magnetization, nanoscale material characterization, and advanced coherent imaging methods. Key techniques include XUV/X-ray spectroscopy, laser-driven plasma sources, and femtosecond time-resolved studies. Professional Roles: He chairs the Physikalische Gesellschaft zu Berlin and the Elettra Scientific Advisory Council. He has held leadership roles in the European XFEL Scientific Advisory Committee and the Komitee für Forschung mit Synchrotronstrahlung (KFS). His lab develops state-of-the-art setups for ultrafast X-ray scattering and holography.
Ulrich Vogt is a Professor in Applied Physics at Kungliga Tekniska Högskolan (KTH) and leads the X-ray Optics and Nanoimaging group within the Bio-Opto-Nano unit. He serves as Vice-head of the Applied Physics department for undergraduate education. His research focuses on developing advanced X-ray microscopy techniques, particularly at synchrotron facilities like MAX IV’s NanoMAX beamline. He specializes in X-ray optics, nanoimaging, and diffractive optical elements for applications in materials science, biology, and medicine. Key contributions include the design of the NanoMAX beamline, optimization of X-ray zone plates via metal-assisted chemical etching, and advancements in multi-beam ptychography. Vogt has pioneered compact X-ray microscopy systems using laser-plasma sources and liquid-jet targets. His work integrates nanofabrication, computational imaging, and synchrotron instrumentation to achieve sub-100 nm resolution in hard and soft X-ray regimes. Teaching responsibilities include courses on experimental physics, photonics, and X-ray applications. His lab collaborates internationally on projects like the European XFEL, emphasizing high-brightness sources and radiation-resistant optics. Recent innovations include adaptive multi-beam ptychography and stereo X-ray imaging for 3D nanoscale visualization. Research highlights span over 100 peer-reviewed articles, with a focus on coherence characterization, beamline instrumentation, and nanostructured materials. Vogt’s grants include a Röntgen-Ångström Cluster award supporting multi-beam ptychography and cryo-microscopy advancements.