Jennifer C. McIntosh is a Professor and University Distinguished Scholar in the Department of Hydrology and Atmospheric Sciences at the University of Arizona (UA), with a joint appointment in the Department of Geosciences. She is also an Adjunct Professor at the University of Saskatchewan. Her academic roles include teaching advanced hydrogeology courses and advising graduate students. She holds a BA in Geology-Chemistry from Whitman College, MS and PhD in Geology from the University of Michigan, and completed a postdoctoral fellowship at Johns Hopkins University. Her research focuses on the interplay between hydrology, geochemistry, and microbiology in the Earth’s crust, spanning micro-to-macro scales. Key projects include studying subsurface fluid dynamics, microbial methane production, and the impacts of climate and human activities on groundwater systems. She has applied these methods to critical zones, sedimentary basins, and oil/gas reservoirs, with fieldwork in the Colorado Plateau, Paradox Basin, and Western Canada. McIntosh has received numerous awards for research and teaching, including the Blitzer Award for Excellence in Teaching Physics-Related Sciences (2019) and the UA Distinguished Scholar Award (2017). She actively serves on national committees for the US EPA, National Academies, and Nuclear Waste Technical Review Board. Education: BA (Whitman College), MS/PhD (University of Michigan), Postdoc (Johns Hopkins University) Notable Awards: GSA Fellow (2019), CIFAR Earth 4D Program (2019), Morton K. Blaustein Fellowship (2004) Labs/Teams: Jemez River Basin Critical Zone Observatory, Siljan Impact Structure Research Group Future Works: Investigating anthropogenic impacts on deep groundwater systems and astrobiology of subsurface microbes
Peter Wilf is a Professor in the Department of Geosciences at Pennsylvania State University's College of Earth & Mineral Sciences. His research focuses on fossil plants as indicators of past climates, biodiversity, and environmental disturbances from the latest Cretaceous through middle Eocene (~67-45 million years ago). Wilf leads significant research projects including the Origins of Southeast Asian Rainforests from Paleobotany and Machine Learning and the Patagonia Paleofloras Project. His research interests span paleobotany, paleoclimatology, plant-insect interactions, and biogeography, with emphasis on how deep-time data illuminate modern ecosystems and their responses to anthropogenic change. Wilf's work primarily focuses on the latest Cretaceous through middle Eocene, examining global disturbances including warming and cooling events, the end-Cretaceous mass extinction, and recovery periods. His research has significant implications for understanding climate change, biodiversity conservation, and ecosystem dynamics. Wilf's extensive publication record demonstrates consistent high-impact research across paleobotany, with recent work focusing on Southeast Asian rainforests, Patagonian paleofloras, and the connections between Gondwanan landmasses. His research integrates fieldwork in Patagonia and Southeast Asia with advanced analytical techniques, including machine learning applications for fossil leaf identification. Fellow, American Association for the Advancement of Science (AAAS) 2022 Wilson Award for Excellence in Research, Penn State College of Earth & Mineral Sciences 2022 Fellow, Paleontological Society 2017 Fellow, Geological Society of America 2016 Paul F. Robertson Research Breakthrough of the Year Award, Penn State College of Earth & Mineral Sciences 2016 George W. Atherton Award for Excellence in Teaching, Pennsylvania State University 2013 Wilf maintains an active research program with numerous NSF-funded projects and international collaborations. He leads a productive lab group conducting extensive fieldwork in Patagonia, Argentina, and Southeast Asia. His research has transformed understanding of Southern Hemisphere floras, the role of Patagonia in plant evolution, and connections between ancient and modern ecosystems across continents. Wilf's laboratory serves as a hub for paleobotanical research, bringing together students, postdocs, and international collaborators to study fossil plant collections from around the world. The lab integrates traditional paleobotanical methods with cutting-edge technologies including machine learning for fossil identification and advanced imaging techniques for detailed morphological analysis.
Paolo Gamba is Full Professor in Telecommunications and Remote Sensing at the University of Pavia, Italy, where he previously led the Telecommunications and Remote Sensing Laboratory until 2021. He currently serves as Delegate of the Rector for international relations with USA and the Americas. Gamba is Principal Investigator for projects funded by the Italian Space Agency (ASI), Italian Ministry for External Affairs, and European Space Agency (ESA), and coordinates the School of Science and Technology for the Consortium of Italian Universities for Argentina (CUIA). His research focuses on urban remote sensing , image processing , data fusion , and Earth observation applications for physical exposure and risk management. He has pioneered work in remote sensing data analysis and telecommunications, with particular emphasis on developing methods for urban environment monitoring. Gamba holds significant leadership positions in scientific organizations: Current Editor-in-Chief of IEEE Geoscience and Remote Sensing Magazine Former President of IEEE Geoscience and Remote Sensing Society (2019-2020) Technical Chair for multiple IGARSS conferences Founding organizer of GRSS/ISPRS Joint Workshops on Remote Sensing over Urban Areas Awards & Honors: IEEE Fellow (2013) IAPR Fellow (2020) AAIA Fellow (2022) Outstanding Service Award from IEEE GRSS (2021) Multiple excellence in reviewing awards He maintains active involvement in space mission planning through membership in advisory groups for COSMO/SkyMed Constellation (ASI) and Sentinel-2 Next Generation mission (ESA). Gamba has published extensively with over 150 peer-reviewed journal articles and 300+ conference presentations.
Patrick Rérat is a Professor at the University of Lausanne, affiliated with the Institute of Geography and Sustainability within the Faculty of Geosciences and Environment. He is a prominent researcher at LIVES (Interdisciplinary Centre of Excellence for Research on Life Course Changes), where he focuses on urban mobility, transportation patterns, and sustainable mobility transitions. His research interests span transportation studies, urban mobility, sustainable transportation systems, cycling research, residential mobility, and the geography of daily mobility practices. Rérat employs interdisciplinary approaches to examine how individuals navigate urban spaces across different life stages, with particular attention to cycling infrastructure, e-mobility adoption, and the relationship between transportation modes and broader social patterns. Rérat's recent work demonstrates a strong focus on cycling practices, with numerous publications examining cargo bike adoption, e-bike usage patterns, and the effects of cycling infrastructure. His research employs various methodological approaches including user segmentation, longitudinal mobility studies, and spatial analysis of urban transportation patterns. He has made significant contributions to understanding how transportation choices evolve across the life course, particularly during youth transitions. His scholarly output includes numerous publications in leading transportation and geography journals, with recent work focusing on contemporary mobility challenges including pandemic-era transportation changes, telework impacts on mobility patterns, and the political dimensions of cycling infrastructure. As a professor at the University of Lausanne, Rérat contributes to advancing research on sustainable urban mobility while training the next generation of geographers and transportation specialists. His work bridges theoretical geographic concepts with practical urban planning applications, making significant contributions to both academic scholarship and urban policy development.
Diana Allen is a Professor in the Department of Earth Sciences at Simon Fraser University, where she leads the Groundwater Resources Research Group (GRRG). Her research focuses on hydrogeology with particular emphasis on groundwater resource evaluation and hydrogeological modeling, with current research on climate change impacts on groundwater systems, groundwater resources in mountainous and coastal regions, and low temperature geothermal systems. Education: B.Sc. Honours, Carleton University, 1986 M.Sc., Carleton University, 1988 Ph.D., Carleton University, 1996 Dr. Allen's research spans several key areas of hydrogeology and water resources. Her work on climate change impacts examines how extreme climate events affect groundwater systems, particularly in mountainous regions. She has developed methodologies for reconstructing historical groundwater levels using tree ring widths to understand long-term drought patterns. Her research on coastal aquifers assesses vulnerability to salinization, while her work in Northeast British Columbia evaluates water security risks associated with shale gas development. She also investigates aquifer-stream connectivity and the impacts of pumping on streamflow. Dr. Allen's publication record shows a strong focus on applied hydrogeology with significant contributions to understanding groundwater responses to climate extremes, drought assessment methodologies, and coastal aquifer vulnerability. Her research combines field studies with numerical modeling across diverse environments from mountainous regions to coastal deltas. Dr. Allen has successfully secured funding from major agencies including NSERC, the Canadian Mountain Network, the Pacific Institute for Climate Solutions, and various BC government ministries. Her research has practical applications for water resource management under climate change. As a dedicated educator and mentor, Dr. Allen supervises numerous graduate students working on cutting-edge hydrogeological research projects across British Columbia and beyond. Her students pursue careers in hydrogeology and environmental geoscience, applying GIS methods and computational hydrogeology to analyze field data.
Professor Gary Gibbons is a distinguished academic at the University of Cambridge, holding the position of Professor of Theoretical Physics within the Department of Applied Mathematics and Theoretical Physics (DAMTP), part of the Faculty of Mathematics. His research focuses on general relativity, quantum gravity, cosmology, and black hole physics. He is a core member of the Relativity and Gravitation Group, known for contributions to gravitational wave theory, black hole thermodynamics, and geometric methods in physics. His work intersects with areas such as the memory effect of gravitational waves, Carroll symmetry, and the mathematical structure of spacetime. Prof. Gibbons collaborates internationally, publishing extensively in top journals like Physical Review D and Classical and Quantum Gravity . His research also extends to applied mathematics, including studies on abrasion processes and shape evolution in geosciences. He maintains an active role in theoretical physics, advising graduate students and contributing to the academic community through lectures and seminars.
Dr. Yan Feng is an Assistant Professor at Delft University of Technology's Department of Transport and Planning and Director of the Mobility in eXtended Reality (XR) Lab. Her research focuses on using XR technologies (Virtual, Augmented, and Mixed Reality) to study human mobility behavior in urban environments, including walking, cycling, automated vehicles, and public transportation. She leads interdisciplinary research at the intersection of transportation engineering, design, architecture, and human-computer interaction, aiming to advance human-centered and inclusive mobility systems. Her research interests include mobility behavior analysis, XR-based methodologies for studying wayfinding, evacuation scenarios, human-vehicle interaction, safety training, and accessibility. Key contributions involve developing XR tools for urban mobility research and addressing diversity and inclusion in transportation systems. Recent work emphasizes validating VR simulations against real-world environments and analyzing pedestrian behavior in high-risk scenarios. Articles highlight methodologies for crowd management strategies, pedestrian choice modeling, and evacuation dynamics. No scientific awards are explicitly mentioned in the provided texts. Dr. Feng’s activities include organizing conferences (e.g., XRIA 2024), delivering keynote talks on automated driving and cycling simulator studies, and serving on editorial boards like the Delft Young Academy. The Mobility in eXtended Reality Lab is central to her work, fostering collaborations across disciplines to innovate mobility solutions.
Mike Willis is an Associate Professor of Cryospheric Science, Geodesy & Remote Sensing at the Department of Geosciences, Virginia Tech's College of Science. His research focuses on advancing remote sensing techniques to study Earth's cryosphere, coastal environments, and natural hazards. He leads projects on glacial dynamics, sea level rise impacts, landslide monitoring, and the application of GNSS and InSAR technologies. His work combines field instrumentation (e.g., OrangePi-GNSS systems) with satellite data analysis to address climate and geohazard challenges in polar regions and coastal communities. Education background: Not explicitly stated in provided text. Research interests include cryospheric science, geodetic monitoring, and environmental remote sensing applications. His lab group maintains a dedicated website at https://sites.google.com/view/4datvt/ . Key research themes include: Glacier and ice shelf mass balance Coastal vulnerability to sea level rise Disaster monitoring using GNSS-IR and InSAR High-resolution digital terrain modeling Recent projects highlight work in Greenland (landslide monitoring, sea level measurements), the Pacific Northwest (subduction zone hazards), and the Dominican Republic (coastal inundation modeling). His interdisciplinary approach bridges geophysical observations with computational geospatial analysis.
Natalia Rybczynski is an Adjunct Research Professor in the Department of Biology at Carleton University, affiliated with the Faculty of Science. Her primary research focuses on Paleobiology and Paleoenvironments of the Cenozoic High Arctic and functional morphology of vertebrate feeding and locomotion systems. She holds offices at the Canadian Museum of Nature in Gatineau and coordinates interdisciplinary projects on Arctic paleoenvironments, pinniped evolution, and vertebrate herbivore feeding mechanisms. Education: B.Sc. in Biology, Carleton University M.Sc. in Zoology, University of Toronto Ph.D. in Evolutionary Anthropology, Duke University Research Interests: Reconstructing Arctic paleoenvironments during the Neogene Evolutionary transitions in marine mammals (e.g., pinnipeds) Feeding kinematics in herbivorous vertebrates like hadrosaurs Integration of field-based paleontology with biomechanical and anatomical analyses Her publications span paleoclimatology, fossil analysis, and evolutionary studies, emphasizing Arctic ecosystems and vertebrate adaptations. Collaborative work includes geoscientists to reconstruct ancient Arctic climates and anatomists to model feeding systems in extinct species. Active in field expeditions and lab-based experimental studies. Labs/Teams: Collaborates with Canadian Museum of Nature researchers and international teams in Arctic paleontology projects. Engages in interdisciplinary initiatives like the PoLAR-FIT project studying Pliocene Arctic ecosystems.
Dr. Alain Bonneville is a Lab Fellow and Geophysicist at Pacific Northwest National Laboratory (PNNL) and holds a Courtesy Professor appointment at Oregon State University's College of Earth, Ocean, and Atmospheric Sciences. With extensive experience in geological storage of CO2, geothermal energy, and geophysical monitoring techniques, Dr. Bonneville leads diverse research projects that bridge fundamental science and practical applications for energy and environmental challenges. Dr. Bonneville's educational background includes: PhD in Geophysics from the University of Montpellier, France MS in Petroleum Geophysics from IFP-School, Paris, France BS in Geology from the University of Lyon, France Dr. Bonneville's research spans several critical areas in Earth sciences and energy systems. His work on geothermal energy focuses on super-hot enhanced geothermal systems (EGS), site characterization, monitoring, and stimulation fluids. In geological CO2 storage, he investigates project management, site characterization, numerical modeling, and monitoring methods using potential fields and remote sensing. His expertise in geophysical methods includes heat flow measurements, gravity surveys, muon tomography development for borehole deployment, and remote sensing applications. Additional research areas encompass marine heat flow instrumentation development, thermal monitoring of active volcanoes, and intraplate volcanism studies in the Indian and Pacific Oceans. Dr. Bonneville has received significant recognition for his contributions to science, including: Membership in the Washington State Academy of Sciences Lab Fellow position at Pacific Northwest National Laboratory Executive Committee membership on the U.S. National Risk Assessment Partnership Scientific Committee membership at IFP-Energies Nouvelles, France He also holds two U.S. patents related to electrophilic acid gas-reactive fluids for enhanced fracturing and recovery of energy producing materials. Throughout his career, Dr. Bonneville has led significant research initiatives, including the PNNL Carbon Sequestration Initiative (2009-2013) and the European Marie Curie Research Training Network on Greenhouse Gas Removal (GRASP), which involved 14 academic and industrial institutions across 7 countries and supported 35 PhD students and post-docs. His work on the FutureGen 2.0 project demonstrates his leadership in large-scale carbon storage site characterization and monitoring program design. Dr. Bonneville maintains active collaborations with research teams at PNNL's Environmental Molecular Sciences Laboratory and works closely with Oregon State University's geoscience researchers. His laboratory work focuses on developing novel instrumentation for geophysical monitoring, particularly in the areas of muon tomography for subsurface characterization and thermal monitoring systems for geothermal and carbon storage applications.
J.D. Jansen is a full Professor at Delft University of Technology (TU Delft) in the School of Civil Engineering & Geosciences, specializing in the Reservoir Engineering department. His research focuses on systems and control theory applied to subsurface flow mechanics, with applications in oil and gas production, geothermal energy, and induced seismicity. He actively contributes to academic networks through editorial roles, keynote presentations, and international collaborations. Active in computational geosciences (modeling, simulation, data analysis) Member of the Dutch Mining Council since 2016 Recipient of two Society of Petroleum Engineers awards in 2018 His work emphasizes optimization of subsurface processes, numerical modeling of porous materials, and seismicity mitigation. Recent publications highlight fault slip mechanics, benchmarking simulations, and stress pattern analysis in geothermal systems. Collaborations span geomechanics, reservoir engineering, and data assimilation domains. Scientific awards include: Distinguished Membership of the Society of Petroleum Engineers (2018) SPE Distinguished Achievement Award for Petroleum Engineering Faculty (2018) He leads research initiatives in induced seismicity, particularly in the Groningen Field, and contributes to model-based production optimization. Media engagements since 2020 demonstrate public outreach in energy transition topics.
Dr. Stephanie Spahr is a Research Group Leader at the Leibniz Institute of Freshwater Ecology and Inland Fisheries (IGB) in Berlin, Germany, where she leads the Organic Contaminants research group within the Department of Ecohydrology and Biogeochemistry. Previously, she served as a Junior Research Group Leader at the University of Tübingen's Center for Applied Geoscience (2019-2021) and as a Postdoctoral Researcher at Stanford University's Department of Civil and Environmental Engineering (2016-2019). Dr. Spahr earned her PhD in Environmental Chemistry from the Swiss Federal Institute of Technology Lausanne (EPFL) and the Swiss Federal Institute of Aquatic Science and Technology (Eawag) in 2016. Her doctoral research focused on the formation of N-nitrosodimethylamine during water disinfection with chloramine. She completed her MSc in Geoecology at the University of Tübingen in 2012, with thesis work on carbon and nitrogen isotope analysis of benzotriazoles conducted at Eawag, and her BSc in Geoecology/Ecosystem Management at the same institution in 2010. Dr. Spahr's research focuses on trace organic contaminants in aquatic systems, with particular expertise in transformation processes of contaminants in natural and engineered systems, advanced oxidation processes for water treatment, urban blue-green infrastructure, and compound-specific isotope analysis. Her work bridges environmental chemistry, engineering, and ecology to address water quality challenges in urban and natural water systems. She employs advanced analytical techniques to track contaminant sources and transformation pathways, with a strong emphasis on practical applications for water treatment and environmental protection. Her recent publications demonstrate a strong focus on biochar-based water treatment technologies, particularly for stormwater management. She investigates how biochar amendments can remove trace organic contaminants from urban runoff, with recent work examining persulfate activation mechanisms, the role of chloride in reactive species formation, and the performance of engineered media filters under dynamic conditions. Her research also extends to understanding contaminant transport in rivers, the ecological impacts of pollutants, and developing analytical methods for environmental monitoring. The interdisciplinary nature of her work connects chemical processes with ecological outcomes. Outstanding Review Paper Award 2023 in Environmental Science: Water Research & Technology Selected for the Falling Walls Female Science Talents Intensive Track 2023 Selected mentee in the Leibniz Mentoring Programme 2022-2023 Best poster award (1st prize) at the Wasser 2022 of the Water Chemistry Society Selected fellow in the Postdoc Academy for Transformational Leadership 2020-2022 (Robert Bosch Stiftung) Selected fellow in the Athene Program for early female career researchers at the University of Tübingen, 2020-2021 As a Research Group Leader, Dr. Spahr supervises multiple research projects including 'POllution in UrbaN ponds, eco-evolutionary Dynamics, and Ecosystem Resilience (POUNDER)', 'Dynamic hyporheic zone', 'NYMPHE', and the 'Incident-related special investigation programme for the environmental disaster in the Oder River'. She serves on the Executive Board of the German Water Chemistry Society and heads its Expert Committee on 'Oxidative Processes'. Her collaborative work spans numerous institutions across Germany and internationally, addressing critical water quality challenges through interdisciplinary approaches. Dr. Spahr leads the Organic Contaminants research group at IGB Berlin, which focuses on understanding the fate and treatment of organic pollutants in water systems. Her team employs advanced analytical techniques including compound-specific isotope analysis to track contaminant sources and transformation pathways. The group collaborates extensively with other departments at IGB and with international partners on projects addressing urban water challenges and ecological impacts of pollution. Current research emphasizes innovative water treatment technologies, particularly biochar-based systems for stormwater management, and investigating the complex interactions between contaminants, aquatic ecosystems, and human activities.
Inga Berre is a Professor at the Department of Mathematics, University of Bergen, and serves as Director of the Center for Modeling of Coupled Subsurface Dynamics (CSD). She leads the Porous Media Research Group and was appointed Argyris Visiting Professor at the University of Stuttgart's SimTech Cluster of Excellence in 2023. Research Interests: Mathematical modeling, partial differential equations, numerical methods for coupled thermo-hydro-mechanical-chemical processes in subsurface systems, and fault reactivation induced by injection/production. Scientific Leadership: Member of SIAM Council (2022-2027), Chair of SIAM GS activity group (2021-2022), Co-Chair of SET-Plan Deep Geothermal Implementation Working Group (2019-2021), and Chair of the Joint Program Geothermal, European Energy Research Alliance (2018-2021). Awards: 2011 Meltzer Award for Young Researchers. Advisory Roles: Member of Scientific Advisory Boards for GFZ (2024-2027) and SFB1313 (2018-), among others. Teaching: Developed courses on calculus, functional analysis, mathematical modeling, and numerical methods at the Bergen Summer Research School.
Jan Dirk Wegner is an Associate Professor at the University of Zurich, holding the chair in 'Data Science for Sciences' and leading the EcoVision Lab. He previously served as a Postdoc (2012–2016) and senior scientist (2017–2020) at ETH Zurich's Photogrammetry and Remote Sensing Group, following his PhD (with distinction) from Leibniz University Hannover (2011). His research bridges machine learning, computer vision, and remote sensing to address environmental and geoscience challenges, focusing on large-scale environmental data analysis, vegetation monitoring, and climate change mitigation. Education: PhD (with distinction) in Geodesy, Leibniz University Hannover (2011) Postdoc, ETH Zurich (2012–2016) Senior Scientist, ETH Zurich (2017–2020) Research Interests: Machine Learning, Computer Vision, Remote Sensing, Environmental Science, Climate Science, Geosciences, Explainable AI, Uncertainty Quantification, and Applications in Sustainability. The EcoVision Lab develops data-driven methods for global-scale environmental monitoring, including vegetation parameter mapping, flood prediction, forest degradation detection, and AI-driven ecological modeling. Awards: ETH Postdoctoral Fellowship (2012–2016) Science Prize of the German Geodetic Commission WEF Young Scientist Class 2020 (Top 25 globally under 40) Advising & Leadership: Director of the University of Zurich's Doctoral School in Data Science, leading the EcoVision Lab, and coordinating the CVPR EarthVision Workshops. His roles include Vice President of ISPRS Technical Commission II, member of the ETH AI Center, ELLIS, and UN-ETH Partnership. Labs/Teams: EcoVision Lab focuses on interdisciplinary AI applications for environmental challenges, collaborating with NGOs, governments, and industry to translate research into societal impact.
Professor Kurt Iveson is a Professor of Urban Geography in the School of Geosciences at the University of Sydney. He is affiliated with the Sydney Environment Institute and Sydney Southeast Asia Centre. His research focuses on urban equity, public space governance, and the democratization of urban processes. Notable projects include studies on multicultural urban planning, pandemic-era mutual aid networks, and climate adaptation strategies. He has authored influential books such as Publics and the City (2007) and Everyday Equalities (2019). Iveson’s work often bridges theory and practice, addressing issues like affordable housing activism, graffiti policies, and the spatial implications of digital media. His recent research emphasizes community-led disaster resilience, people power strategies, and the geopolitics of urban infrastructure. Grants include studies on informal accommodation in Sydney and international comparisons of urban alliances. Media engagements include ABC discussions on outdoor advertising, vertical transport, and post-pandemic urban recovery. His work advocates for inclusive urban policies that balance equity, sustainability, and civic participation.