Gideon Rosenbaum is Professor in Structural Geology and Tectonics at the University of Queensland's School of the Environment. His research focuses on geodynamic processes at convergent plate margins. BSc Hebrew University (1997) PhD Monash University (2004) Research examines tectonic evolution of orogenic belts using field geology, geochronology, and geophysical data. Current projects investigate arc curvature development, subduction zone segmentation, and continental assembly mechanisms. Recent publications demonstrate advanced applications in geochronology and structural analysis, particularly in Australian and Mediterranean terrains. Work increasingly incorporates geochemical proxies for tectonic reconstruction.
Professor Patrice Rey is a faculty member at the School of Geosciences, The University of Sydney. He holds the rank of Professor and specializes in geodynamics, tectonics, and landscape evolution. With an international career spanning 12 institutions across three continents, his research focuses on continental rifting, mantle dynamics, metamorphic processes, and the interplay between climate and tectonics. Notable projects include studies on Australia’s geological history, the formation of precious opal, and the dynamics of early Earth geodynamics. His work bridges field geology, numerical modeling, and geophysical analysis. Key research themes include gravitational collapse in cratons, the role of isostasy in fold belt evolution, and the impact of dynamic topography on sedimentary systems. He has contributed to interdisciplinary projects such as the Perseverance Mars mission, highlighting connections between Earth’s geology and Martian surface processes. Recent publications emphasize continental crust evolution, landscape dynamics, and the integration of virtual reality tools in geological education. He leads research teams funded by grants like the Australian Research Council (DP22 and LP20 projects), focusing on mineral systems and Proterozoic rift basins. His media presence includes BBC documentaries and NOVA series, showcasing his expertise in continental evolution and planetary geology.
Emily M. Peterman is an Associate Professor of Earth and Oceanographic Science at Bowdoin College, currently on leave for the 2025–2026 academic year. She specializes in studying mountain belt evolution and micro-to-nanoscale mineral processes using petrology, geochemistry, and geochronology. Her lab employs advanced techniques like SEM, EBSD, and cathodoluminescence to analyze mineral recrystallization and deformation. Education: PhD, University of California, Santa Barbara (2009) BA, Geology and Spanish, Middlebury College (2004) Universidad SEK, Segovia, Spain (2003) Research Interests: Peterman investigates tectonic processes through mineral-scale analysis, focusing on metamorphic reactions, crustal evolution, and nanoscale trace element mobility. Her work bridges structural geology with geochemical methods to decode Earth's dynamic history. Publications: Her recent articles emphasize Appalachian tectonics, nanogeochronology, and metamorphic petrology. Trends show strong focus on integrating field geology with atom-scale microscopy to resolve complex orogenic processes. Grants & Collaborations: NSF Tectonics Grant (2020–2023) for hosting the 6th Structural Geology and Tectonics Forum. NSF Petrology Grant (2017–2023) for ultrahigh-pressure metamorphism research in Greece/Bulgaria with UMass-Amherst. Co-directs Bowdoin's SEM Lab with EDS/EBSD/CL capabilities, supporting >600 students.
Dr. Maren Boese is a Senior Research Scientist at the Swiss Seismological Service (SED) and Seismology and Geodynamics (SEG) groups at ETH Zurich. Her expertise spans seismology, earthquake early warning systems, and planetary seismology. She leads projects like the CISN ShakeAlert system for California and contributed to NASA's InSight mission to Mars. She earned her Ph.D. from Karlsruhe Institute of Technology (2006) and a Master's from Kiel University (2002). Research Focus: Real-time seismic event detection, finite-fault rupture analysis, ground-motion simulation, and Marsquake seismology. Key contributions include developing the FinDer algorithm for the ShakeAlert system and advancing early warning methodologies in Central America and Switzerland. Awards: 2011: Outstanding Publication Award (Luxembourg National Research Fund) 2010: Ausgewählter Ort im Land der Ideen (BMBF Project EWS Transport) 2006: European IST Prize (Early Warning for Strong Earthquakes) Grants & Leadership: Led the CISN ShakeAlert team (2009–2014), managed the German CRC 461 project, and coordinated international collaborations like the InSight Marsquake Service. Labs/Teams: Swiss Seismological Service (ETH Zurich), NASA InSight Mission, and the CHEAP smartphone network project in Chile.
Paul A Kapp is a Professor in the Department of Geosciences at the University of Arizona. His expertise spans continental tectonics, regional geology, structural-stratigraphic analysis, and eolian processes, with a focus on Asia and Cordilleran orogenic systems. Fieldwork includes geologic mapping, kinematic analysis of structures, and stratigraphic section measurements across Precambrian to Quaternary rock types. University: University of Arizona Department: Geosciences Email: pkapp@arizona.edu Research interests emphasize quantifying timing and rates of tectonic processes via geochronology and thermochronology. Key themes include Tibetan Plateau uplift, lithospheric dynamics in collisional zones, and eolian-landscape interactions. His work integrates field observations with analytical methods to understand orogenic plateau formation and paleoelevation reconstruction. Recent publications highlight tectonic-climate feedbacks, mantle melting mechanisms in Tibet, and crustal deformation in the North American Cordillera. Articles often address geodynamic modeling, basin evolution, and isotopic dating applications, reflecting a multidisciplinary approach to orogenic and sedimentary systems.
Peter C. Lippert is an Associate Professor in the Department of Geology & Geophysics at the University of Utah , with research spanning paleomagnetism, tectonics, and environmental magnetism. His work connects geological time scales to climate dynamics, orogenic processes, and urban pollution monitoring. BS (2003) and PhD (2010) in Earth sciences Postdoctoral training at University of Arizona and UC Santa Cruz Research focuses include: Antarctic ice age cyclicity and Earth's orbital influences Hydrothermal alteration effects on paleomagnetic records in Tibet Magmatism during Mongol-Okhotsk Ocean closure Magnetofossils as climate proxies for rapid warming events Evergreen needle magnetization for urban pollution mapping Recent publications highlight collaborations across 50+ international institutions , with methodological innovations in site-level paleomagnetic analysis and FORC-PCA magnetofossil discrimination. His 15 most recent articles (2020–2024) address tectonic reconstructions, geomagnetic field evolution, and climate-ocean interactions. He serves on the Magnetics Information Consortium (MagIC) Steering Committee and has received the Taft-Nicholson Summer Faculty Fellow award. Teaching emphasizes Earth science as a philosophy, with courses on structural geology, dynamic Earth systems, and field research.
Kip Hodges is a Foundation Professor at the School of Earth and Space Exploration, Arizona State University (ASU). He leads the Group 18 Laboratories, focusing on noble gas isotope geochemistry and planetary geology. His work integrates field, laboratory, and theoretical approaches to study mountain formation, planetary processes, and impact events. His research interests span Earth Systems, Planetary Geoscience, Continental Tectonics, Earth Surface Processes, Cosmochemistry, and Planetary Geochemistry. He examines the geodynamic evolution of mountain belts like the Himalaya and Tibetan Plateau, utilizing thermal-kinematic modeling and noble gas isotope data. His planetary research includes lunar and Martian geochronology, impact crater analysis, and strategies for human-robotic collaboration in planetary exploration. Key projects include studies on the thermal evolution of terrestrial/extraterrestrial materials, diffusivity of noble gases, and the dynamics of continental subduction. His work contributes to understanding mountain-building, impact history of the Solar System, and future exploration missions. He directs the Group 18 Laboratories, renowned for innovative noble gas isotope geochemistry techniques to constrain thermal histories of terrestrial and extraterrestrial samples. The lab's work includes studies on noble gas diffusivity in planetary materials.
Georg Stadler is a Professor of Mathematics and Computer Science at New York University's Courant Institute. His research focuses on computational inverse problems, uncertainty quantification, and PDE-constrained optimization, driven by applications in climate modeling, geophysics, and plasma physics. He holds a PhD from the University of Graz (2004) and has been recognized with awards including the Gordon Bell Prize (2015) and the SIAM Computational Science & Engineering Best Paper Prize (2019). Education: Ph.D. (Dr.), Mathematics, University of Graz, Austria, 2004. M.S. (Mag.), Mathematics, University of Graz, Austria, 2001. M.S., Mathematics and Geometry Education, Graz University of Technology and University of Graz, 2001. Research Interests: Large-scale PDE solvers, Bayesian inverse problems, extreme event probability estimation, and optimization under uncertainty. Applications in climate (sea/land ice, tsunamis), plasma physics (fusion), and computational earth science (mantle flow, plate tectonics). Recent Research Trends: His work emphasizes scalable algorithms for high-dimensional Bayesian inverse problems, with applications to tsunamis, stellarator coil design, and ice sheet dynamics. Recent articles highlight advancements in extreme event probability estimation and robust multigrid solvers for incompressible Stokes equations. Awards: Gordon Bell Prize (2015) for extreme scalability of implicit solvers. SIAM Best Paper Prize (2019) for computational science contributions. Young Scientist ASCINA Award and Springer CSE Prize (2011). Advising & Grants: Current PhD student Sonia Reilly and former advisees include Chen Li and Shanyin Tong. His research is supported by NSF, ONR MURI, and the Simons Foundation. He co-leads the Computational Mathematics and Scientific Computing Seminar at Courant. Labs & Collaborations: Active in Courant’s interdisciplinary groups, focusing on high-performance computing and inverse problems. Collaborates with institutions like UT Austin on mantle dynamics and fusion energy projects.
Zachary E. Ross is a Professor of Geophysics at the California Institute of Technology (Caltech) and holds the William H. Hurt Scholar distinction since 2021. His research integrates machine learning, computational mathematics, and seismology to analyze earthquakes and fault zones using large seismic datasets. Education B.S., University of California, Davis (2009) M.S., California Polytechnic State University, San Luis Obispo (2011) Ph.D., University of Southern California (2016) His research focuses on high-resolution imaging of fault zones, understanding earthquake sequences in space and time, and applying artificial intelligence to seismic data analysis. He develops scalable algorithms for waveform inversion, ground-motion synthesis, and real-time seismic monitoring. Recent publications highlight his work on neural operators for wave propagation, AI-driven seismicity analysis, and induced earthquake dynamics. He teaches advanced courses including Ge 264 – Machine Learning in Geophysics and Ge 271 – Dynamics of Seismicity . Scientific Awards William H. Hurt Scholar (2021–present)
Professor Meghan S. Miller is an academic at the Australian National University (ANU), serving as a Professor in the Research School of Earth Sciences, specializing in Geophysics. She holds an ARC Future Fellowship, focusing on advancing Distributed Acoustic Sensing (DAS) technology for seismic imaging. Her research emphasizes observational seismology, particularly at critical tectonic plate boundaries such as subduction zones and continental collision zones. Education: Ph.D. in Geophysics from ANU (2006), M.Eng. from Cornell University (2000), M.S. from Columbia University (1999), and B.A. from Whittier College (1997). Research interests include seismic imaging of Earth’s structure, dynamics of subduction zones, and the application of novel techniques like DAS for high-resolution subsurface imaging. She has led projects such as the Southwest Australia Seismic Network (SWAN) and the SISSLE experiment in New Zealand. Key achievements include over 100 peer-reviewed publications, supervising numerous graduate students, and leading international collaborations in Indonesia, Alaska, and Morocco. Awards include the ARC Future Fellowship (2022–2026). Labs/Teams: Active in the AuScope Earth Imaging Program and collaborates with institutions like Geoscience Australia and Macquarie University.
Dr. Christopher Spencer is an Assistant Professor in the Department of Geological Science and Geological Engineering at Queen’s University, Canada. His research focuses on the formation, destruction, and evolution of the continental crust through field-based studies and geochemical analysis. He holds adjunct roles at Curtin University and Syracuse University, and serves as an editor for journals including the Canadian Journal of Earth and Sciences, Himalayan Geology, and Geophysical Research Letters. Dr. Spencer earned a Ph.D. in Earth Science from the University of St Andrews, and B.Sc./M.Sc. degrees in Geological Sciences from Brigham Young University. His work combines igneous petrology, geochemistry, and geochronology to study tectonic processes and atmospheric oxidation history. Key research locations include Oman, China, India, Japan, and Canada. Awards include the GSA Donath Medal (2020) and John Curtin Fellowship (2015). His research interests span tectonochemistry, sediment subduction dynamics, and the interplay between biosphere and lithosphere. Current projects investigate modern tectonic processes, crustal evolution, and the Paleoproterozoic 'tectono-magmatic lull.' He actively supervises postdoctoral researchers and recruits students for fieldwork in the North American Cordillera, Marianas, and Oman ophiolite.
Rex N Taylor is a Professor in the School of Ocean and Earth Science at the University of Southampton. With over 20 years of academic experience, he has developed both undergraduate and postgraduate courses in geology and environmental geoscience, specializing in volcanology, igneous systems, and analytical geochemistry. His research takes him on fieldwork and research cruises across the globe, including a notable 2019 submersible dive to 5700m in the Philippine Sea to explore the earliest volcanoes of the Western Pacific. Taylor's research focuses on volcanic geochemistry, particularly using high-resolution Pb isotope studies to investigate magma evolution and catastrophic volcanic eruptions across diverse tectonic settings including mantle plumes, island arcs, and mid-ocean ridges. His work spans multiple continents and ocean basins, with significant contributions to understanding the geochemical processes in the Afar triple junction, Ethiopian Rift, Tenerife volcanic system, and Western Pacific subduction zones. Analysis of Taylor's recent publications (2022-2025) reveals a strong focus on mantle dynamics, magma evolution processes, and the geochemical signatures of different tectonic settings. His research combines field observations with advanced geochemical techniques, particularly isotope studies, to unravel complex volcanic systems. A recurring theme is the investigation of how deep Earth processes manifest in surface volcanic activity across various geological timescales. Taylor actively supervises PhD students including Morgan George Alun Bugler and Daniel Christopher Howcroft through the INSPIRE program. He has developed a Virtual Fieldwork portal that provides multi-scale visualization of geological field localities, from satellite imagery down to microscopic views, demonstrating his commitment to innovative teaching methods in earth sciences.
Craig O'Neill is an Associate Professor in Geophysics/Remote Sensing at the School of Earth & Atmospheric Sciences, Faculty of Science, Queensland University of Technology (QUT). His research spans geodynamics, planetary science, geophysics, and engineering geology, with a strong focus on understanding Earth and planetary evolution through computational modeling and geophysical data analysis. His research interests include Geophysics, Geodynamics, Remote Sensing, Planetary Science, Engineering Geology, Geochemistry, and Geology . He applies advanced numerical methods to model planetary interiors, tectonic processes, and geohazards, with recent work exploring early Earth crust formation, Venusian core dynamics, exoplanet thermal evolution, and applied geophysical techniques for engineering and environmental monitoring. The trend in his recent publications shows a strong interdisciplinary focus, combining computational geophysics with planetary science and Earth systems analysis. His work appears in leading journals such as Nature , Science Advances , and Geophysical Research Letters , covering topics from asteroid impacts and craton formation to ambient noise tomography and groundwater response to climate change. Professional Memberships: Australian Society of Exploration Geophysicists American Geophysical Union Australian Geomechanics Society Craig O'Neill supervises research students in areas such as lunar seismology and planetary geodynamics. While no specific grants are listed in the provided text, his extensive publication record and active research programs suggest ongoing funding support. He has developed open-source tools like Planet_LB for lattice-Boltzmann modeling of planetary systems. He is actively involved in the geophysics community, with scholarly profiles on ORCID, Google Scholar, and Scopus, and shares his research via X (formerly Twitter). His work bridges fundamental planetary science with practical geophysical applications.
Professor Ana Ferreira is a leading seismologist at University College London, focusing on deep Earth structure and earthquake source processes. Her research integrates seismic and geodetic data to understand planetary dynamics from the surface to the lowermost mantle. Her work includes pioneering seismic tomography, such as the SGLOBE-rani 3D anisotropy model, and earthquake source analysis using InSAR and normal mode data. She leads the Seismological Laboratory and teaches Seismology II and Field Geophysics. Recent projects include the UPFLOW experiment, which deployed 49 ocean bottom seismometers in the Atlantic, and studies on Greenland ice sheet evolution and Tonga volcanic eruptions. Her EU-funded research emphasizes multidisciplinary data integration and numerical modeling. Key article trends cover mantle anisotropy, global tomography, earthquake source inversion, cosmology-inspired machine learning, and ocean bottom seismology applications in geodynamics and cryospheric processes.
Brandon Shuck is an Assistant Professor in the Department of Geology & Geophysics at Louisiana State University (LSU), part of the College of Science. His research focuses on solid-earth geophysics, particularly tectonic processes within plate boundaries and mature tectonic settings. He uses active-source seismic reflection and wide-angle ocean-bottom seismometer data to image subsurface lithospheric architecture and integrate interdisciplinary datasets including bathymetry, borehole logs, and geodynamic models. Education: Ph.D. in Geological Sciences (2021) from the University of Texas at Austin; B.S. in Geology (Petroleum Emphasis) and Mathematics (2015) from Western Colorado University. Previously served as a Postdoctoral Fellow at Lamont-Doherty Earth Observatory, Columbia University (2021–2024). Research Interests: Tectonic evolution of the lithosphere at plate boundaries, feedbacks between lithospheric stress and fluid-rock interactions, geologic hazards related to subduction zones, and mantle dynamics during continental breakup. Active projects include studies of subduction initiation in the Tyrrhenian Sea, megathrust fault segmentation in Cascadia, and water content in the Cocos Plate offshore Mexico. Current opportunities include an NSF-funded PhD position (starting Fall 2025) investigating mantle dynamics during early Atlantic seafloor spreading, involving seismic data acquisition on the R/V Langseth. His group emphasizes collaborative, interdisciplinary approaches combining seismic imaging, field geology, and modeling. Awards: None explicitly listed, though his work has been supported through NSF funding and institutional grants. Lab/Team: Directs the LSU Solid-Earth Geophysics Research Group, which integrates geophysical data analysis with field observations to address tectonic questions at multiple scales.