Andrea Cavalleri is a renowned physicist affiliated with both the University of Hamburg and the University of Oxford as a Professor of Physics. He serves as Founding Director of the Max Planck Institute for the Structure and Dynamics of Matter since 2013, having previously held leadership roles at the same institute and its predecessor departments. Laurea and PhD in Physics, University of Pavia (1994–1998) Postdoc, University of California, San Diego (1998–2001) Scientific staff, Lawrence Berkeley National Laboratory (2001–2005) His research focuses on ultrafast science, superconductivity, and nonlinear phononics. He pioneered femtosecond x-ray experiments to study atomic-structural dynamics in solids and demonstrated light-induced superconductivity in cuprates and fullerites. Current work involves X-ray Free Electron Lasers for photo-induced phase transitions. Selected publications highlight trends in ultrafast control of condensed matter phases, including superconducting plasma waves, Josephson solitons, and Dirac carrier dynamics in graphene. His work bridges experimental techniques with fundamental insights into quantum materials. Fellow of the American Physical Society (2011), Institute of Physics (2015), and AAAS (2016) Max Born Medal (2015), Dannie Heinemann Prize (2015), ERC Synergy Grant (2013) David Shirley Award (2004) and European Young Investigator Award (2004) Cavalleri's research has driven the development of tools for studying non-equilibrium phenomena in complex solids, enabling new directions in materials science and quantum physics. He has held named lectureships at institutions like Collège de France and Uppsala University.
Andrea C. Ferrari is a Professor of Nanotechnology in the Department of Engineering at the University of Cambridge, UK. He currently holds multiple leadership roles, including Science and Technology Officer and Chair of the Management Panel for the EU Graphene Flagship, as well as Director of both the EPSRC Centre for Doctoral Training in Graphene Technology and the Cambridge Graphene Centre. PhD, University of Cambridge (24 March 2001) Laurea in Nuclear Engineering, Politecnico di Milano (24 July 1997) His research focuses on nanoscience, graphene and related materials, Raman spectroscopy, and optoelectronic applications of nanotechnology. He has authored over 390 papers, amassed >116,000 citations, and delivered >450 invited/keynote talks globally. He has received numerous accolades including: IMR-Lee Hsun Lecture Award (2018) Nanosmat Award (2017) ERC Synergy grant (2013) Philip Leverhulme Prize (2005) As a leading figure in graphene research, he has secured >£60M in research funding, led major EU Flagship projects, and commercialized innovations through patents licensed to companies like Nokia, IBM, and Huawei. He chairs the Executive Board of the EU Graphene Flagship and serves as Academic lead for the Royce Institute's e-beam lithography initiatives.
Andrea C. Ferrari is a Professor of Nanotechnology at the Department of Engineering, University of Cambridge, UK. He holds multiple leadership roles, including Director of the Cambridge Graphene Centre and EPSRC Centre for Doctoral Training in Graphene Technology, and serves as Science and Technology Officer for the EU Graphene Flagship. Education: PhD, University of Cambridge (2001) Laurea in Nuclear Engineering, Politecnico di Milano (1997) Ferrari’s research focuses on graphene, 2D materials, and their applications in nanotechnology, photonics, optoelectronics, and Raman spectroscopy. His work bridges fundamental studies and industrial translation, emphasizing scalable synthesis and characterization techniques. His publications span over 390 peer-reviewed articles, including groundbreaking studies on graphene photonics, quantum emitters, and advanced optoelectronic devices. These works are highly cited, with an H-index of 115 and over 116,000 total citations. Scientific Awards: IMR-Lee Hsun Lecture Award (2018) Nanosmat Award (2017) Knight Officer of the Order of the Star of Italy (2017) ERC Synergy Grant (2013) EU-40 Materials Prize (2011) Royal Society Wolfson Research Merit Award (2010) ERC Starting Grant (2008) Philip Leverhulme Prize (2005) Ferrari has secured over £60M in research funding, including leadership roles in the EU Graphene Flagship and the EU Quantum Technology Flagship. He is a Fellow of the Optical Society, Materials Research Society, Institute of Physics, and American Physical Society.
Ares J. Rosakis is the Theodore von Kármán Professor of Aeronautics and Mechanical Engineering at the California Institute of Technology (Caltech), where he served as Chair of the Division of Engineering and Applied Science from 2009-2015 and previously as Director of the Graduate Aerospace Laboratories (GALCIT). He has held numerous prestigious visiting professorships including at Nanyang Technological University, Northwestern University, Columbia University, Oxford University, and École Normale Supérieure in Paris. Rosakis earned his B.A. and M.A. in Engineering Science from Oxford University in 1978, followed by his Sc.M. (1980) and Ph.D. (1982) in Engineering (Solid Mechanics) from Brown University. He joined Caltech as an Assistant Professor in 1982, was promoted to Associate Professor in 1988, and to full Professor in 1993. In 2004, he was named the Theodore von Kármán Professor, one of Caltech's most distinguished named chairs. Rosakis is globally recognized as the foremost expert in dynamic failure mechanics of solid materials. His pioneering contributions span the dynamic failure of metals, composites, and interfaces. He invented Coherent Gradient Sensing (CGS) interferometry, a novel optical method sensitive to gradients of optical path differences that has been widely adopted in fracture mechanics and thin film stress measurements. His research encompasses dynamic shear-dominated rupture of heterogeneous materials, rupture mechanics of crustal earthquakes (where he experimentally discovered 'intersonic' or 'supershear' ruptures), and reliability of thin films and in-situ wafer level metrology. His work bridges engineering science, materials mechanics, and geophysics with remarkable interdisciplinary impact. His recent publications demonstrate a strong focus on earthquake mechanics and laboratory simulations of seismic events, particularly supershear earthquake ruptures. The research connects fundamental fracture mechanics with real-world geophysical phenomena, revealing how laboratory-scale experiments can illuminate the physics of large-scale earthquakes. His work has established critical links between theoretical models, experimental observations, and geological field evidence. Rosakis has received numerous prestigious awards including: 2024 Foreign Member of the Royal Society, UK 2023 Honorary PhD from National Technical University of Athens 2023 Honorary Degree of Doctor of Engineering from University of Illinois 2021 Zdeněk P. Bažant Medal for Failure and Damage Prevention 2018 Timoshenko Medal from ASME 2016 Elected to the National Academy of Sciences 2011 Elected to the National Academy of Engineering Throughout his distinguished career at Caltech, Rosakis has mentored numerous graduate students and postdoctoral researchers, many of whom have become leaders in their fields. His research has been continuously supported by major grants from the National Science Foundation, Department of Energy, and other federal agencies, focusing on dynamic fracture, earthquake mechanics, and advanced optical measurement techniques. He has served on numerous editorial boards and advisory committees for major scientific organizations. At Caltech, Rosakis leads research in the Graduate Aerospace Laboratories (GALCIT), where he has established world-class experimental facilities for studying dynamic fracture and earthquake mechanics. His laboratory features high-speed imaging systems capable of millions of frames per second, infrared diagnostics for temperature field measurements, and specialized equipment for simulating earthquake ruptures at laboratory scale. His research group combines experimental, theoretical, and computational approaches to address fundamental questions in solid mechanics and their applications to geophysics and materials engineering.
Professor Paul Midgley is a leading academic in Materials Science at the University of Cambridge's Department of Materials Science and Metallurgy, serving as Professor since 2007 and Head of Department from 2018–2020. He is a Fellow of Peterhouse College and holds multiple prestigious awards, including the Royal Society Fellowship and the Ernst Ruska Prize. Education: PhD in Physics (University of Bristol, 1991), MSc (Distinction) in Semiconductor Materials (1988), BSc (Hons) Physics (1987). Administration: Director of the Wolfson Electron Microscopy Suite, and active on various University committees including Research, Teaching, and REF. His research focuses on advanced electron microscopy techniques such as convergent beam diffraction, electron tomography, and nanostructure analysis, with applications in nanoscale materials science and 3D reconstruction using compressed sensing. He has pioneered methods like precession electron diffraction and multi-dimensional electron microscopy, contributing to fields like plasmonic nanoparticles and catalytic materials. Key Research Themes: Electron crystallography, nanomaterial characterization, energy materials, and defect analysis in perovskites. Midgley has delivered over 20 invited/plenary lectures globally, including at EUROMAT, the Welch Symposium, and the John Cowley Memorial Lecture. His grant income exceeds £16M as Principal Investigator. Labs/Teams: Leads the Wolfson Electron Microscopy Suite and collaborates internationally on microscopy advancements and materials innovation.
Cesare Franchini is a full Professor at the University of Vienna's Faculty of Physics, leading the Computational Materials Physics research group. His work focuses on theoretical understanding and computational modeling of quantum materials using first principles methods, particularly VASP. He maintains an active research program with numerous postdocs, PhD students, and collaborations across multiple institutions including the University of Bologna. Professor Franchini's research centers on quantum materials with many interacting degrees of freedom (lattice, spin, and electron orbital) that enable novel electronic and magnetic phases. His specific interests include metal-insulator transitions, polaron physics (electron-phonon interactions), non-collinear spin orderings, topological Dirac/Weyl phases, multiferroism, and superconductivity. He has increasingly incorporated machine learning data-driven tools and diagrammatic Monte Carlo techniques into his computational approaches. Analysis of his recent publications (2024-2025) reveals a strong focus on polaron physics across multiple material systems, with significant work on hematite, titanium dioxide, and quantum paraelectrics like KTaO3. His research increasingly integrates machine learning with traditional first-principles methods, particularly for studying hydrogen diffusion, surface science phenomena, and electronic structure calculations. There's also substantial work on single-atom catalysis and the application of advanced computational techniques to understand fundamental charge transport mechanisms in energy materials. Professor Franchini actively supervises numerous PhD students and postdocs, including Andrea Angeletti, Viktor Birschitzky, Lorenzo Celiberti, and several others working on diverse aspects of computational materials physics. He leads or participates in major research projects including TACO (Taming Complexity in Materials Modeling), DCAFM (Doctoral College Advanced Functional Materials), and the recently launched Spin-orbit entangled anharmonic polarons project. His group maintains strong collaborations with experimentalists at Charles University, Technical University of Vienna, and other international institutions.
François Peeters is a Full Professor of Physics at the University of Antwerp, Belgium, holding the position since 2000 (with Dutch title 'gewoon hoogleraar' since 2003). He previously served as Research Director (FWO-VI) at the University of Antwerp (1996-1999), Research Leader (NFWO) (1992-1996), and Senior Research Assistant (NFWO) (1988-1992), establishing a distinguished academic career spanning over three decades. His educational background includes a Ph.D. in Physics from the University of Antwerp (1982), followed by a Habilitation (Hoger aggregaat) from the same institution (1987), and a postdoctoral fellowship at Bell Laboratories in Murray Hill, New Jersey (1982-1983). His academic journey also featured research periods at prestigious institutions including the High Magnetic Field Laboratory in Grenoble, University of California Berkeley, Oxford University, and several Brazilian and Australian universities. Peeters' research focuses on theoretical condensed matter physics , specializing in the electronic, optical, and magnetic properties of nanostructured systems. His work encompasses semiconductors , superconductors , graphene , and hybrid quantum systems , with particular emphasis on strong correlations in both classical (colloids, dusty plasma) and quantum (quantum dots) environments. His theoretical frameworks bridge fundamental quantum mechanics with practical nanotechnology applications, driving innovations in spintronics and quantum device design. Analysis of his publication record reveals a clear evolution from foundational work on polaron physics and quantum Hall systems in the 1980s-1990s toward contemporary research on graphene, topological materials, and programmable quantum nanodevices. His most cited works demonstrate consistent leadership in mesoscopic physics, with recent publications showing increased focus on spin-dependent transport phenomena and two-dimensional material systems. His scientific recognition includes: Fellowship in the American Physical Society (2005) APS Outstanding Referee award (2008) Doctor Honoris Causa from University of Szeged, Hungary (2009) Peeters has supervised 26 completed PhD theses and currently leads the Condensed Matter Theory research group comprising 3 ZAP researchers, 16 PhD students, and 8 postdocs. His grant portfolio includes coordination of an EU Marie Curie Training site on 'Electrons on helium', participation in multiple EU projects, COST actions, and ESF networks, demonstrating sustained success in securing competitive international funding. The Condensed Matter Theory group maintains extensive international collaborations, evidenced by Peeters' research visits to over 10 institutions worldwide and regular hosting of 3-4 international visitors at postdoc or professorial levels. The group's output of over 770 refereed publications with 12,000+ citations reflects its position at the forefront of theoretical condensed matter physics research.
Mikhail Ivanov is a Professor at Humboldt University Berlin (S-W3 Professor) and Imperial College London (Professor and Chair in Attosecond Physics, 20% part-time). He leads the Theory Department at the Max Born Institute for Nonlinear Optics. His academic journey includes a PhD from the General Physics Institute, Moscow, and a M.Sc. in Mathematical Physics from Moscow State University. Research Interests: Ivanov specializes in extreme nonlinear optics, attosecond science, quantum control, and strong-field physics. He pioneered theoretical frameworks for attosecond pulse generation and light-matter interaction, with applications in chemical physics and ultrafast dynamics. His work bridges fundamental quantum phenomena with practical advancements in ultrafast spectroscopy and topological materials. Awards & Recognition: He received the Friedrich Wilhelm Bessel Award (2004) and the Rutherford Medal (2003). His contributions have been recognized through over 30,000 citations and an h-index of 71. Key Achievements: Established the Theory Department at Max Born Institute, employing 35 researchers/students. Published extensively in Nature Photonics , Nature Physics , and Physical Review Letters , focusing on high-harmonic spectroscopy, topological lightwave control, and quantum dynamics in materials.
Univ.-Prof. Aiko Voigt is a Professor and Head of the Department of Meteorology and Geophysics at the University of Vienna. Her research focuses on climate dynamics, cloud physics, and atmospheric processes. She leads the Environment and Climate Research Hub and teaches advanced courses like 'Climate Modelling Lab' and 'Cloud Physics.' Her work explores cloud-radiative interactions, climate change impacts, and extreme weather dynamics. Recent studies analyze energy imbalances, high-cloud feedbacks, and tropical precipitation patterns. Voigt's contributions bridge climate modeling with observational data, emphasizing high-resolution simulations and interdisciplinary approaches. Teaching includes courses such as 'Climate System of the Earth,' 'Scientific Communication,' and 'Introduction to Computational Meteorology.' Her research spans from present-day climate to Snowball Earth scenarios, addressing both modern and paleoclimatic challenges. Publications highlight advancements in radiative transfer algorithms, cyclone dynamics under warming, and uncertainties in climate model predictions. Her work underscores the critical role of clouds in amplifying climate sensitivity and reshaping atmospheric circulation patterns.
Johannes A. Lercher is a full Professor of Chemistry at the Technische Universität München (TUM) since 1998 and Director of the Institute for Integrated Catalysis at the Pacific Northwest National Laboratory (PNNL), Richland, USA. He also holds the title of Battelle Fellow at PNNL and serves as Editor-in-Chief of the Journal of Catalysis. Education Diplom Ingenieur (summa cum laude), Technische Universität Wien, 1978 Dr. techn. (summa cum laude), Technische Universität Wien, 1980 Postdoctoral researcher, Yale University, 1982 Venia docendi (Habilitation), Technische Universität Wien, 1985 Research Interests Prof. Lercher’s research focuses on fundamental and applied aspects of heterogeneous catalysis. His team elucidates elementary reaction steps on solid catalyst surfaces using advanced in-situ spectroscopic techniques, including IR, Raman, solid-state NMR, and X-ray absorption spectroscopy. Major themes include the catalytic valorization of biomass, selective methane functionalization, hydrocarbon processing over zeolites and mesoporous materials, and the design of hierarchically structured catalysts that combine shape selectivity with optimized transport properties. Scientific Awards & Honors Alwin-Mittasch-Preis (2021) David Trimm and Noel Cant Lectureship Award (2017) ENI Award for Hydrocarbons (2016) R. B. Anderson Award (2015/2016) Kozo Tanabe Award for Acid Base Catalysis (2013) Francois Gault Lectureship Robert Burwell Lectureship (North American Catalysis Society) Elected Member: Austrian Academy of Sciences, Academia Europaea, European Academy of Sciences Honorary Professor: Chinese Academy of Sciences institutes (Dalian, Qingdao) and China University of Petroleum Leadership & Service Prof. Lercher has held numerous leadership roles including Dean of the Chemistry Department at TUM (2000–2003), Member of the TUM Senate (2003–2007), President of the International Zeolite Association (2001–2004), and current President of the European Federation of Catalysis Societies. He is Editor-in-Chief of the Journal of Catalysis and serves on the editorial boards of multiple catalysis journals.
Sabine Glasl-Tazreiter is a Lecturer at the University of Vienna's Faculty of Life Sciences , specifically within the Department of Pharmaceutical Sciences and its Division of Pharmacognosy . Her office is located in room 2E 412 on the 4th floor at Josef-Holaubek-Platz 2, Vienna, Austria (1090). Contact details include telephone number +43-1-4277-55207 and email sabine.glasl@univie.ac.at . Principal research focus: Phytochemistry & Biodiscovery Specialization: Secondary metabolites from ethnomedicinally used plants across Europe, Mongolia, and Latin America Key techniques: Isolation of bioactive compounds, structural elucidation, pharmacological evaluation Quality control expertise: Macroscopic/microscopic identification, chemical analytics Recent publications highlight her work in: 2024 - Development of the VOLKSMED Database for Austrian folk medicine wound healing plants 2025 - Advanced mucociliary clearance research in respiratory systems 2023 - Innovations in optoacoustic imaging technology 2019 - Structure-function analysis of phycobiliproteins for medical imaging 2017 - Phytochemical characterization of Latin American antidiabetic plants
Grey Clare is a Professor of Materials Chemistry at the University of Cambridge and holds an adjunct professorship at the State University of New York (SUNY) at Stony Brook. She is a Fellow of Pembroke College, Cambridge, and has led major research initiatives, including the Materials Research Interest Group at Cambridge (2010–2015) and the Northeastern Chemical Energy Storage Center (2009–2015). Her research focuses on NMR spectroscopy, energy storage materials, batteries, supercapacitors, and carbon capture technologies. Key contributions include pioneering work on lithium-ion battery electrodes, structural analysis of energy materials via NMR, and advancements in fuel cell and supercapacitor technologies. Clare has held leadership roles in academic and industrial collaborations, including directorships of DOE-funded energy storage centers. Her honors include the Davy Medal (2014), Fellowship of the Royal Society (2011), and multiple international awards for battery research and mentoring. Research Highlights: Development of advanced battery materials, in situ NMR techniques for energy systems, and structural insights into electrochemical interfaces. Awards: Over 20 prestigious awards, including the Royal Society Kavli Medal, Laukien Award, and multiple honorary PhDs. Leadership: Directed interdisciplinary energy storage initiatives, mentored numerous researchers, and contributed to global energy technology advancements.
Bert F. Sels is a Full Professor at KU Leuven (Catholic University Leuven) in the Faculty of Bioscience Engineering, Department of Molecular and Microbiological Sciences, where he founded and heads the Center for Sustainable Catalysis and Engineering (CSCE). He is also a Visiting Professor at the Chinese Academy of Sciences in Guangzhou and co-founder of the spin-off company Zeopore. Previously, he directed the Centre for Surface Chemistry and Catalysis (COK) from 2016-2019 and served as Head of the Division Bio-refinery and Sustainable Chemistry (2015). He obtained his Ph.D. in 2000 from KU Leuven under Professor Pierre Jacobs, specializing in heterogeneous oxidation catalysis. His research focuses on heterogeneous catalysis for sustainable industrial processes, with expertise spanning: Biorefinery and biofactory systems for chemical production Design of hierarchically structured zeolites and carbon materials Spectroscopic characterization of catalytic active sites Methane activation and small molecule kinetics Renewable chemistry and biomass valorization His group has published 350+ papers (h-index 88) and holds 30 patents. Publications demonstrate strong focus on catalytic biomass conversion, zeolite engineering, and sustainable fuel production, with recent work emphasizing lignin valorization, carbohydrate upgrading, and low-carbon chemical synthesis. Key trends include hierarchical catalyst design and integrated biorefinery processes. Awards and Honors: Green Chemistry Award (2015) INEOS Research Award (2019) European Academy of Sciences and Arts Membership (2018) DSM Chemistry Award (2001) TOTAL Research Award (2013) UMICORE Research Award (2012) First Clean Tech Challenge (2009) He leads the CSCE research group and co-founded the European Research Institute of Catalysis (ERIC). As former co-chair of the International Zeolite Association's Catalysis Commission and associate editor of ACS Sustainable Chemistry & Engineering, he maintains extensive collaborative networks.
Thorsten Schumm - Academic Overview Thorsten Schumm is an Associate Professor at Vienna University of Technology (TU Wien), leading the Quantum Metrology research group within the Atomic Institute. He is a key member of the Erwin Schrödinger Center for Quantum Science & Technology (ESQ) and the Vienna Center for Quantum Science and Technology (VCQ). His research focuses on developing novel quantum measurement techniques, particularly nuclear clocks using thorium-229 isotopes and matter-wave interferometry with collective many-body states. Key Affiliations & Roles Associate Professor, TU Wien (since 201X) ERC Synergy Grant recipient (2019) for the 'Thorium Nuclear Clock' project Principal Investigator for EU-funded MoSaiQC network (2019) and AQUclock project (2022) Research Interests His work bridges quantum metrology with nuclear physics , precision spectroscopy , and many-body quantum systems . He pioneers the development of nuclear clocks—next-generation timekeeping devices using nuclear transitions instead of electronic transitions for unprecedented accuracy. Recent breakthroughs include direct measurement of the thorium-229 isomer energy and advances in laser-driven nuclear excitation techniques. Notable Achievements 2019 ERC Synergy Grant: Enabled global collaboration toward the world's most precise atomic clock 2022 AQUclock project: TU Wien collaboration with Austrian authorities to build state-of-the-art atomic infrastructure 2019: First experimental determination of thorium-229 isomer energy published in Nature Academic Leadership He has mentored 5 PhD students and hosted 5 postdoctoral researchers. His group actively participates in the Vienna Graduate Program on Complex Quantum Systems (COQUS), training the next generation of quantum scientists.
Peter Zoller is a Professor of theoretical physics at the University of Innsbruck and Scientific Director at IQOQI Innsbruck (Austrian Academy of Sciences). His research focuses on quantum optics, many-body quantum physics, and quantum information science, with a strong emphasis on quantum simulation of gauge theories and atomic systems. He has trained 34 PhD students and hosted 57 postdoctoral researchers, fostering collaborations between theory and experiment. His group, the Zoller Group, explores quantum phenomena such as lattice gauge theories, entanglement dynamics, and topological order using advanced quantum simulation techniques. Key research interests include atomic physics, quantum gases, and applications of quantum technologies to high-energy physics problems. Recent work addresses string breaking in quantum simulators, entanglement Hamiltonians, and scalable architectures for fermionic quantum processors. Collaborations span institutions like Harvard, MIT, and the University of Innsbruck’s experimental teams. His contributions bridge foundational physics with cutting-edge quantum technologies, aiming to solve problems inaccessible to classical methods.