Prof. Dr. Peter Strasser is a faculty member at the Technische Universität Berlin , affiliated with the Institute of Chemistry and leading the Electrochemical Catalysis, Energy and Materials Sciences Group within the Faculty II - Mathematics and Natural Sciences . His research spans electrocatalysis , fuel cell technology , and high-throughput materials testing , with a focus on nanostructured catalysts for clean energy systems. Research Interests : High Throughput Testing Fuel Cells Electrocatalysis Electrochemical Materials Water Splitting CO2 Conversion Scientific Contributions highlight trends in oxygen evolution reactions , dealloyed catalysts , and non-noble metal electrocatalysts . His work bridges materials science and energy storage , particularly for hydrogen fuel cells and magnesium batteries . Awards : Otto Roelen Medal 2016 Advising notable researchers like former PhD student Mehtap Özaslan , who established a junior research group at the University of Oldenburg and won the Umicore Scientific Award. Prof. Strasser's team collaborates with UniSysCat and has secured funding from the Federal Ministry of Research for catalyst innovation.
Prof. Dr. Patrick Huber is a leading physicist and Institute Director at the Hamburg University of Technology (TUHH) , heading the Institute for Materials and X-Ray Physics (M-2) . He also leads the High-Resolution X-Ray Analytics of Materials group at DESY through a cooperative professorship. His research spans condensed matter physics , nanoporous materials , and X-ray analytics , with significant contributions to molecular water science and soft matter in confinement . Education: PhD in Physics (1999, Saarland University), Diploma in Physics (1995, Saarland University) Professional Career: Full Professor at TUHH (2020-present), Member of CRC 1615 (2023-present), Spokesperson for CMWS (2024-present), Cluster of Excellence BlueMat (2025) Research Interests focus on multi-scale material behavior under extreme confinement, particularly hierarchical porous silicon and silica systems . His work examines adsorption-induced deformation , elastocapillarity , fluid transport in nanopores, and metamaterial design principles using electrolytes , polymers , and liquid crystals . Fundamental studies include fluid interface thermodynamics and microscopic hydrodynamics . Scientific Awards include the Top Reviewer Award (2018) from Applied Physics Letters and the Dr.-Eduard-Martin Award (2000) for his dissertation. He contributes to 130+ publications with an h-index of 36 (2021). Advising and Grants involve supervising 18 doctoral and master's students , including Manuel Brinker , Marc Thelen , and Stella Gries . He participates in Collaborative Research Centre CRC 1615 , Cluster of Excellence EXC 3120 BlueMat , and the United Nations University Hub on Climate Engineering . Laboratory and Teams include the Institute for Materials and X-Ray Physics (M-2) at TUHH, the High-Resolution X-Ray Analytics group at DESY, and contributions to the Centre for Hybrid Nanostructures (CHyN) .
Dr. Svyatoslav Kondrat is a Research Fellow at the Institute for Computational Physics, University of Stuttgart, working in the group of Prof. Holm. His research focuses on computational studies of ionic systems, nanopores, and energy storage materials, utilizing large-scale molecular dynamics simulations to investigate electrolyte behavior under confinement and in bulk solutions. His primary research interests include: Electrolyte physics and ionic transport mechanisms Nanopore design for supercapacitors and energy applications Solvent effects in confined electrochemical systems High-performance computing for molecular simulations Kondrat's publications (2017-2024) demonstrate a consistent focus on optimizing ion transport and screening in nanoporous materials, with applications in energy storage. His work bridges theoretical electrochemistry, computational physics, and nanomaterials engineering, frequently exploring charge dynamics using advanced simulation techniques. He collaborates extensively within Prof. Holm's research group on projects involving confined electrolytes and decay length phenomena in concentrated ionic systems.
Prof. Dr. Thomas Koop is a Professor of Physical Chemistry at Bielefeld University, where he leads the Atmospheric and Physical Chemistry research group within the Faculty of Chemistry. He has served as Dean of the Faculty of Chemistry from 2022-2024 and currently serves as Vice Dean (2024-2025). His research focuses on phase transition phenomena, particularly ice nucleation and growth, supercooled liquids, and the formation of amorphous glassy materials. His work has significant implications for understanding atmospheric aerosols, cloud formation mechanisms, and cryobiological processes. The group employs experimental techniques such as differential scanning calorimetry and optical cryo-microscopy, developing specialized equipment for studying phase transitions at micro and nanoscales. Prof. Koop's publication record shows a consistent focus on atmospheric chemistry with increasing exploration of biological ice nucleators, planetary atmospheres (including Venus), and the physical properties of atmospheric aerosols. His most cited work includes 'Water activity as the determinant for homogeneous ice nucleation in aqueous solutions' (Nature, 2000), which established fundamental principles in the field. 2024-2025: Vice Dean of Faculty of Chemistry 2022-2024: Dean of Faculty of Chemistry 2001-2022: Co-founder and Executive Editor of Atmospheric Chemistry and Physics Since 2004: Coordinator of Graduate School of Chemistry and Biochemistry Prof. Koop has mentored numerous students and postdoctoral researchers, contributing significantly to the development of the next generation of atmospheric scientists. His research has been supported by various funding agencies and has led to collaborations with institutions worldwide, from MIT and UC Berkeley to research centers in Switzerland and Israel.
Ulrich Tallarek serves as Professor of Analytical Chemistry in the Faculty of Chemistry at Philipps University of Marburg, where he has held a W3 professorship since 2011. He also serves on the Board of Directors for the Materials Science Center at the university, a position he has held since 2007. His research group focuses on the fundamental understanding of transport phenomena in porous media with applications spanning chromatography, battery technology, and microfluidic systems. The group maintains strong collaborations with institutions worldwide and secures substantial research funding for advanced computational and experimental work. Professor Tallarek's research interests center on functional porous solids, with specific focus on morphology-transport-performance relationships. His work bridges multiple scales from molecular dynamics simulations of solute behavior in nanopores to macroscopic transport in chromatographic columns and battery electrodes. Key research areas include diffusion in hierarchical porous media, electrokinetic phenomena in microfluidic systems, molecular simulation of chromatographic processes, and advanced characterization of porous materials using tomography and other techniques. His group has pioneered multiscale simulation approaches that connect molecular-level surface chemistry to macroscopic transport properties. The research output demonstrates consistent focus on understanding fundamental transport mechanisms in porous systems, with recent publications emphasizing multiscale simulation techniques, molecular dynamics studies of solvent effects in chromatography, advanced characterization of mesoporous structures, and applications to separation science and energy storage. The work shows strong integration of computational modeling with experimental validation across multiple length scales. 2003: Desty Memorial Prize for Innovation in Separation Science, The Royal Institution of Great Britain, London 2006: Young Scientist Award from DECHEMA e.V. 2011: Named Discussion Leader at the 2011 Gordon Research Conference on Physics & Chemistry of Microfluidics 2011–2012: Chairman of the German Chemical Society (GDCh), Marburg 2013: Finalist, World Technology Awards, for category Environment 2013: Named as one of the 100 most influential analytical scientists in the world (The Analytical Scientist Power List) 2017: Recipient of the Silver Jubilee Medal 2017, The Chromatographic Society, UK Professor Tallarek's research has been supported by numerous grants enabling high-performance computing resources, advanced instrumentation, and international collaborations. His group maintains strong ties with industry partners in separation science and analytical instrumentation. The Tallarek Research Group includes postdoctoral researchers, PhD students, and technical staff working across experimental and computational domains. Current projects focus on molecular simulation of chromatographic processes, advanced characterization of porous battery electrodes, and development of novel separation methodologies. The Tallarek Research Group operates state-of-the-art facilities for computational modeling, including access to high-performance computing resources at Forschungszentrum Jülich. The group also maintains experimental capabilities for chromatographic analysis, materials characterization, and microfluidic device development. Their work on physically reconstructed porous media has established new standards for connecting microstructure to transport properties in complex materials systems.
Prof. Dr. Uli Lemmer is a Professor at the Department of Electrical Engineering and Information Technology (ETIT) at the Karlsruhe Institute of Technology (KIT). His research focuses on optoelectronics, thermoelectric materials, and printed electronics, with a strong emphasis on energy harvesting, nanotechnology, and photonics. He leads the Lichttechnisches Institut (LTI) and is affiliated with the Institute of Applied Physics. His work spans innovations in laser systems, flexible electronics, and bio-inspired materials. Office: Building 30.34, Room 223; Phone: +49 721 608-42530; Email: uli.lemmer@kit.edu. Research interests include the development of advanced materials for solar cells, thermoelectric generators, and sensor technologies. He pioneers methods like aerosol-jet printing and inkjet printing for scalable production of electronic devices. His group explores biomimetic structures (e.g., snake scale nanopores) and terahertz systems, pushing boundaries in both fundamental science and applied engineering. Recent publications highlight breakthroughs in printed thermoelectric modules, perovskite-based photovoltaics, and high-frequency antennas. His work integrates cutting-edge fabrication techniques with material science to address challenges in renewable energy, sensor networks, and flexible electronics. Prof. Lemmer collaborates internationally on projects like EU-funded energy initiatives and partners with industry for technology transfer. His lab specializes in additive manufacturing, optical systems, and nanoscale device engineering, aiming to bridge the gap between academic research and industrial applications.
Prof. Dr. Ulrich Kleinekathöfer is a Full Professor of Theoretical Physics at Constructor University (formerly Jacobs University Bremen) in the School of Science. His research focuses on computational physics and biophysics, particularly on light-harvesting complexes, membrane transport, and quantum dynamics in biological systems. He leads the Computational Physics and Biophysics research group and coordinates the MSCA Doctoral Training Network "PhotoCaM". His educational background includes: PhD from Max-Planck-Institut für Strömungsforschung, Göttingen (1996) Diploma in Physics from Universität Göttingen (1993) Habilitation in Physics from Technische Universität Chemnitz (2002) Prof. Kleinekathöfer's research spans multiple areas of computational biophysics and theoretical physics. His primary interests include excitation energy transfer in light-harvesting complexes , molecular transport through membrane channels and nanopores , and quantum dynamics in open systems . His group develops and applies advanced computational methods including molecular dynamics simulations, quantum chemistry calculations, and machine learning approaches to study these phenomena. A significant portion of his work focuses on photosynthetic systems, particularly how energy is transferred and converted in natural light-harvesting complexes, with implications for renewable energy technologies. His recent publications demonstrate a strong trend toward integrating machine learning with traditional computational methods, particularly in the fields of quantum chemistry and molecular dynamics. There's a clear focus on multifidelity approaches that balance computational efficiency with accuracy. His work spans from fundamental quantum dynamics to applied research on antibiotic transport mechanisms, showing remarkable breadth while maintaining depth in computational methodology development. His notable recognition includes: Tan Chin Tuan Exchange Fellowship, NTU Singapore (2019) Prof. Kleinekathöfer has supervised numerous PhD students and postdoctoral researchers, with a current group comprising several PhD candidates and research associates. His research is supported by multiple funding sources including the Deutsche Forschungsgemeinschaft (DFG), European Union through MSCA Doctoral Network PhotoCaM, and previously through the Innovative Medicines Initiative "Translocation" and Marie Curie Training Program "Translocation". His collaborative network spans internationally, with partnerships at institutions in Germany, USA, Greece, and Switzerland. The Computational Physics and Biophysics Group operates within Constructor University's research infrastructure, utilizing high-performance computing resources for their simulations. The group maintains active collaborations with experimental groups to validate and inform their computational models, creating a strong interdisciplinary research environment focused on understanding fundamental biophysical processes at the molecular level.
Professor Wolfgang Fritzsche serves as Head of the Nanobiophotonics Department at the Leibniz Institute of Photonic Technology (Leibniz-IPHT) in Jena, Germany, where he leads cutting-edge research at the intersection of nanotechnology and photonics. His laboratory, located in HG 269, maintains active collaborations across multiple international institutions as evidenced by his extensive publication record. Dr. Fritzsche's research spans multiple nanotechnology domains with particular emphasis on plasmonic nanoparticles, nanozymes, and optical sensing platforms. His work demonstrates exceptional versatility across fundamental nanomaterial synthesis and practical biomedical applications. Recent projects include developing innovative antibiofilm agents using β-cyclodextrin inclusion complexes, engineering laccase-mimetic nanozymes for food safety monitoring, and creating plasmonic nanocomposites for antibacterial applications. His expertise in localized surface plasmon resonance (LSPR) sensing has led to significant advancements in real-time monitoring of nanomaterial interactions and biosensing platforms. Analysis of his recent publication trajectory reveals a strategic research focus on translating nanomaterial discoveries into practical diagnostic and therapeutic applications. His work demonstrates increasing integration of multiple nanotechnology approaches, particularly combining plasmonics with enzymatic mimetics and advanced imaging techniques. The consistent high-impact journal placements across chemistry, materials science, and biomedical engineering publications indicate strong cross-disciplinary recognition of his contributions to nanobiophotonics. While no specific awards are mentioned in the available documentation, Professor Fritzsche's leadership position at a Leibniz Association institute and his prolific publication record in top-tier journals represent significant professional recognition. His research program appears well-funded through the substantial output of collaborative papers spanning multiple application areas. Professor Fritzsche maintains an active research laboratory focused on nanobiophotonics, with particular expertise in plasmonic nanoparticle synthesis, surface functionalization techniques, and optical biosensing platforms. His team appears to specialize in bridging fundamental nanomaterial properties with practical biomedical applications, particularly in infection control, cancer therapy, and diagnostic technologies. The interdisciplinary nature of his publications suggests collaboration across chemistry, physics, biology, and medical research domains.
Prof. Michael Vogel is a Professor at the Institute for Condensed Matter Physics at Darmstadt University of Technology (Technische Universität Darmstadt), where he leads the Molecular Dynamics in Condensed Matter research group. His work focuses on understanding the microscopic structure and dynamics of condensed matter systems and relating these to macroscopic properties. Research Interests Prof. Vogel's research spans several key areas in condensed matter physics and physical chemistry. His group investigates the structure and dynamics of condensed matter—from simple liquids and soft matter to crystalline and amorphous solids. Specific research focuses include: Water Anomalies: Exploring the fundamental understanding of water's anomalies, particularly testing the hypothesis of a transition between two liquid phases in supercooled water. Ion Transport: Studying microscopic mechanisms of ion movement in energy materials, with applications to lithium-ion batteries and fuel cells. Glass Transition: Investigating cooperative and heterogeneous motion processes during the glass transition to contribute to fundamental understanding. Protein Dynamics: Examining the interplay between protein and solvent dynamics, particularly in biological function. Ionic Liquids: Analyzing structural and dynamic heterogeneities in ionic liquids and their relationship to macroscopic properties. Liquids at Interfaces: Understanding how interfaces alter the properties of liquids, especially water, when confined in nanoscopic geometries. Research Methodology Prof. Vogel's group combines modern experimental techniques, particularly nuclear magnetic resonance (NMR) spectroscopy, with computational approaches like molecular dynamics simulations. This dual approach allows for comprehensive characterization of both local molecular motions and long-range transport properties. Their work often involves analyzing systems under confinement, at interfaces, or in supercooled states to reveal fundamental mechanisms that govern material behavior. Scientific Contributions Prof. Vogel has made significant contributions to understanding: The role of dynamic heterogeneities in glass-forming systems Mechanisms of ion transport in solid-state electrolytes The behavior of water in confined geometries and at interfaces The coupling between protein and solvent dynamics Structural and dynamic properties of ionic liquids Research Team and Facilities Prof. Vogel leads an active research group at TU Darmstadt with access to advanced NMR facilities and computational resources. His team regularly publishes in high-impact journals across physics, chemistry, and materials science. The group collaborates with other research institutions and participates in interdisciplinary projects such as the DFG Research Group 1583 on "Hydrogen-bonding liquids in the presence of internal interfaces of different hydroaffinity."
Professor Friedrich Simmel (*1970) holds the Chair of Physics of Synthetic Biosystems at the Technical University of Munich (TUM) within the TUM School of Natural Sciences, Department of Bioscience. His research laboratory is located at Am Coulombwall 4a in Garching near Munich, where he leads a vibrant research group focused on the physics of synthetic biological systems. Professor Simmel's research interests center on bionanotechnology, particularly artificial molecular machines and nanostructures made from DNA molecules, as well as the design of artificial biochemical control circuits. His work bridges physics, chemistry, and biology to create novel synthetic biosystems with programmable functions. Key research areas include DNA origami, DNA nanotechnology, synthetic gene circuits, and biomimetic systems. His recent publications demonstrate a strong trend toward increasingly complex DNA-based nanodevices with applications in biosensing, nanomedicine, and synthetic biology. The research shows progression from fundamental DNA nanostructure design to functional systems with practical applications in diagnostics and biocomputation. His group has pioneered approaches for creating DNA-based nanorobots, synthetic membrane channels, and programmable biochemical oscillators. ERC Advanced Grant (2015) Human frontier science program (HFSP) young investigator award (2006) Emmy Noether Young Researcher of the German Research Foundation (2002) acatech - the German Academy of Science and Engineering (2013) Professor Simmel actively mentors numerous students and junior researchers, as evidenced by the many co-instructors listed on his practical courses. His research has been supported by prestigious grants including the ERC Advanced Grant. His laboratory maintains strong collaborations across disciplines, working with researchers in microfluidics, synthetic biology, and biomedical engineering. The group operates within TUM's advanced infrastructure for biophysics and nanotechnology, including facilities for electron microscopy, NMR spectroscopy, and X-ray crystallography.
Eva Blasco is an Associated Group Leader at the Functional Polymeric Materials Research Unit under the Institute of Nanotechnology at Karlsruhe Institute of Technology (KIT), with affiliations to the University of Heidelberg. Her work bridges 3D printing , polymer chemistry , and nanophotonics , focusing on light-driven material design. Her research centers on photochemically activated 3D printing inks , light-stabilized dynamic materials , and multi-photon lithography . She explores how two-color light absorption , alkoxyamine chemistry , and visible light post-processing enable adaptable microstructures. Key trends include 4D printing , biodegradable inks , and temperature/light-responsive systems . Blasco's publications highlight collaborations with institutions like KIT, University of Heidelberg, and international teams. Her work spans photonic metamaterials , bio-inspired 3D scaffolds , and subtractive laser lithography , often involving interdisciplinary applications of light in material science.
Professor Hendrik Dietz holds the Chair of Biomolecular Nanotechnology at the Technical University of Munich (TUM) , affiliated with the TUM School of Natural Sciences and the Munich Institute of Robotics and Machine Intelligence . His research focuses on constructing synthetic molecular devices and machines through DNA origami and self-assembly principles. Research Themes DNA origami for programmable nanodevices Self-assembly inspired by natural molecular systems Molecular visualization with cryo-EM Applications in medicine and synthetic biology Key Article Trends : Dietz's work explores DNA-based rotary motors, virus-trapping shells, and bio-inspired vesicle production. His recent articles highlight integrations of DNA origami with electrochemical sensing, deep learning, and transmembrane transport systems. Scientific Awards ERC Consolidator Grant (2016) Gottfried Wilhelm Leibniz Prize (2015) Hoechst Lecturer Scholarship (2012) Arnold Sommerfeld Award (2010) ERC Starting Grant (2010) Collaborations and Grants : He receives funding from the Deutsche Forschungsgemeinschaft (DFG) via the Excellence Clusters CIPSM and NIM, SFB863, and the Leibniz Prize program, as well as the European Research Council. Dietz collaborates with institutions like Harvard Medical School and the Max Planck School Matter to Life.
Prof. Robert Meißner is a Professor at the Department of Surface Physics and Technology at TUHH. His research focuses on molecular simulation techniques applied to corrosion processes, energy storage systems, and nanomaterials. He develops computational tools like ELECTRODE and i-PI for electrochemical and advanced molecular dynamics simulations. His work addresses challenges in magnesium battery performance, structural health monitoring of composite materials, and interfacial phenomena in nanoscale systems. Education details are not explicitly provided in the text, but his professional trajectory reflects extensive academic and industrial experience in materials science. Research interests span from fundamental studies (e.g., water imbibition in nanopores, magnetite oxidation dynamics) to applied innovations (e.g., corrosion protection via layered double hydroxides, data-driven electrolyte design). His recent publications highlight trends in data-driven materials discovery, structural health monitoring via vibro-acoustic methods, and computational prediction of corrosion inhibitors. He collaborates on projects involving graphene-based supercapacitors, epoxy resin curing dynamics, and peptide-surface interactions. Advising and grants: While student names are not listed, his research group actively explores corrosion engineering, battery technology, and nanomaterials. Projects include EU-funded initiatives and industry partnerships. Technical expertise includes ATR-FTIR spectroscopy, molecular dynamics, and machine learning for sparse data scenarios. He leads teams focused on surface science and energy storage, maintaining lab facilities for in situ electrochemical analysis and advanced computational modeling. His work bridges theoretical insights with practical applications in materials durability and energy systems.
Leibniz Institute for Solid State and Materials ResearchGermany
Dr. Karin Leistner serves as Group Leader for Nanoelectrodeposition and Magneto-ionic Materials at the Leibniz Institute for Solid State and Materials Research Dresden (IFW Dresden). Her research focuses on the intersection of electrochemistry and magnetism, developing energy-efficient methods for voltage-controlled magnetic nanostructures. Her primary research interests include Magneto-ionic Materials , Nanoelectrodeposition , Magnetic Nanostructures , and Voltage-Controlled Magnetism . Through electrochemical approaches, she pioneers methods to manipulate magnetic properties at the nanoscale without requiring external magnetic fields, enabling applications in low-power spintronics and memory devices. Her work emphasizes redox transformations, electrolytic gating, and interfacial engineering to achieve programmable magnetism in hybrid metal/oxide systems. Analysis of her publication trends reveals consistent innovation in magneto-ionic effects (2021-2025), with increasing focus on microscale patterning (2023-2025) and energy-efficient device applications . Her research spans fundamental electrochemistry (e.g., self-terminated electrodeposition) to applied nanotechnology (e.g., magnetoresistance switching aerogels), demonstrating strong translational potential. Recent work integrates advanced characterization techniques like Kerr microscopy with electrochemical control for precise magnetic manipulation. Dr. Leistner has delivered over 20 invited talks at international institutions including TU Chemnitz, Forschungszentrum Jülich, and Simon Fraser University, highlighting her recognition as a leading expert in electrochemically controlled magnetism. Her collaborative research spans multiple continents, with publications co-authored by teams in Germany, USA, Mexico, Austria, and Slovenia. She leads research activities within IFW Dresden's nanoelectrodeposition laboratory, utilizing specialized electrochemical cells coupled with in situ magnetic characterization. Her group maintains strong collaborations with transmission electron microscopy facilities for real-time observation of electrochemical deposition processes, as demonstrated in joint work with the Wigner Research Centre for Physics.
Barbara AJ Lechner is a Rudolf Mößbauer Tenure Track Professor in the Department of Chemistry at the Technical University of Munich (TUM). Appointed in October 2020, she leads research in surface science and nanomaterials characterization at TUM's Institute for Advanced Study (TUM-IAS). Her work focuses on understanding dynamic processes in functional nanomaterials under realistic conditions, particularly model catalysts exposed to reactive gas atmospheres. Dr. Lechner received her Chemistry education at the University of Innsbruck, Austria, followed by a Ph.D. in Physics from the University of Cambridge in 2012. Her postdoctoral work was conducted at the Lawrence Berkeley National Laboratory under Prof. Miquel Salmeron before she joined TUM as a group leader at the Chair of Physical Chemistry. Dr. Lechner's research centers on the dynamic restructuring of functional nanomaterials, particularly how model catalysts behave under reactive gas conditions. Using advanced scanning tunneling microscopy with high temporal and spatial resolution, she investigates how the structure of metal clusters and oxide supports changes in real-time. Her work with precisely defined small clusters allows examination of how highly reactive particle structures form, decay, and influence material function. This research has significant implications for catalyst design and optimization. Analysis of Dr. Lechner's recent publications reveals a consistent focus on surface science and catalysis, with particular emphasis on in-situ characterization techniques. Her work spans fundamental surface processes on materials like iron oxide, titanium dioxide, and platinum surfaces, examining phenomena such as cluster sintering, surface reconstruction, and reaction mechanisms under realistic conditions. The integration of advanced microscopy techniques with controlled gas environments represents a distinctive approach in her research portfolio. ERC Starting Grant (2019) Fellow of the Bavarian Academy of Sciences and Humanities as one of the members of their "Young Academy" (2018) Marie Skłodowska-Curie Individual Fellowship (2017-2019) Max Auwachter Prize (2016) Humboldt Research Fellowship (2016-2017) Springer Thesis Prize (2013) Dr. Lechner has secured significant research funding through prestigious grants including the ERC Starting Grant and Marie Skłodowska-Curie Fellowship. Her research group develops and applies advanced microscopy techniques to study dynamic processes in catalytic systems. She collaborates extensively with researchers across TUM and international institutions, particularly focusing on understanding the fundamental mechanisms that govern catalytic activity and material stability under operating conditions. As a Rudolf Mößbauer Tenure Track Professor, Dr. Lechner leads a research group focused on the development and application of in-situ surface characterization techniques. Her laboratory employs scanning tunneling microscopy integrated with controlled gas environments to observe dynamic processes at the atomic scale. This approach allows her team to directly correlate structural changes with catalytic function, providing insights that could lead to more efficient and stable catalyst designs.