Neha Sharma is an Assistant Professor in the Department of Civil and Environmental Engineering at Auburn University. Her research focuses on nutrient recovery, electrochemical resource recovery, water reuse, trace metal cycling, and pollutant fate and removal.
Joël Brugger is a Professor of Synchrotron Geosciences at Monash University, where he is affiliated with the School of Earth, Atmosphere and Environment. He earned his PhD from the University of Basel in 1996 and has held academic and research positions at the University of Adelaide and South Australian Museum before joining Monash in 2014. His research leverages advanced synchrotron techniques to investigate geochemical processes in natural and anthropogenic systems. His research interests include: Synchrotron-based geochemistry Formation of rare earth element deposits Biogeochemical cycling of critical and toxic elements (e.g., tellurium) Environmental behavior of radioactive particles (e.g., plutonium at Maralinga) Mineral-microbe-fluid interactions Sustainable mineral extraction technologies His recent publications highlight the use of high-energy X-rays to study ore formation, nanoparticle dynamics, and environmental contamination. These works demonstrate a strong trend toward interdisciplinary, experiment-driven geochemistry with implications for renewable energy and environmental safety. His research is frequently published in high-impact science communication platforms and peer-reviewed journals. Scientific awards and recognitions include: No specific awards listed in the source material. He actively engages in research supervision, consulting, and media outreach. His work is supported by the Australian Research Council and industry partners in the mining sector. He leads a multidisciplinary team and collaborates internationally, particularly in synchrotron science facilities in Europe. He has contributed to studies involving nanoscale imaging, environmental risk assessment, and clean technology development. He is involved in research teams and labs such as: Minerals, Microbes and Solutions research group (formerly at University of Adelaide) Monash Centre for Electron Microscopy Collaborations with Diamond Light Source (UK) and European Synchrotron Radiation Facility (France)
Jelena Vesković is a Researcher at the Department of Analytical Chemistry and Quality Control, Technical Faculty in Bor, University of Belgrade. Her work focuses on environmental chemistry, health risk assessment, and pollution source apportionment using advanced statistical models. Research Interests: Jelena specializes in analyzing potentially toxic elements in water and soil systems. Her studies integrate Monte Carlo simulations, multivariate analysis, and receptor models to assess contamination sources and health risks. Key areas include groundwater pollution, rare earth elements, and urban sediment toxicology. Recent Publications: Her 2025–2024 articles investigate radiological risks in groundwater, dietary cadmium exposure, PAH contamination in lakes, and soil-to-groundwater heavy metal migration using Monte Carlo and multivariate methods. Laboratory Affiliation: Works in the Department of Analytical Chemistry and Quality Control, contributing to environmental monitoring projects in mining regions and urban environments.
Andrew Sutherland is Professor of Organic Chemistry at the University of Glasgow , School of Chemistry. His research integrates synthetic organic chemistry with molecular imaging, focusing on PET/SPECT tracer development, fluorescent amino acid probes, and transition-metal catalysis for rapid scaffold assembly. Education: Not explicitly listed in the provided text. Research Interests: Molecular imaging of neurological diseases and cancer using PET/SPECT tracers Development of fluorescent amino acid probes for cell imaging Transition-metal-catalyzed transformations (Fe, Cu, Pd, Ni) One-pot multi-reaction processes for drug-like scaffolds and natural products Publication Trends: His 2024–2025 work emphasizes fluorogenic amino acids, radiohalogenation for PET imaging, and iron/copper-catalyzed C–H functionalization. Earlier work includes natural product synthesis and mechanistic studies on halodeboronation. Scientific Awards: None listed in the provided text. Grants & Collaborations: Extensive collaborations with imaging scientists (e.g., Sally Pimlott, Adriana Tavares) and synthetic chemists, evidenced by multi-author papers and joint PET ligand development. Research Group: Leads the Sutherland group , housed in the Joseph Black Building (C5-06), with active projects in chemical biology and organic synthesis.
Marcus Christl is a Lecturer at the ETH Zürich Department of Physics and Head of the Laboratory of Ion Beam Physics (LIP) . His academic profile focuses on Accelerator Mass Spectrometry (AMS) , cosmogenic nuclide dating, and environmental applications of isotope geochemistry. Office: HPK H 33, Otto-Stern-Weg 5, 8093 Zürich, Switzerland Phone: +41 44 633 38 84 / +41 44 633 65 07 Email: mchristl@phys.ethz.ch ORCID: 0000-0002-3131-6652 Dr. Christl teaches courses in Accelerator Mass Spectrometry and Quaternary Dating Methods , including: 402-0180-00L Ethics and Scientific Integrity for Doctoral Students in Physics 402-0620-00L Current Topics in Accelerator Mass Spectrometry and Its Applications 402-0621-00L Introduction to Accelerator Mass Spectrometry His research spans multiple disciplines through cosmogenic isotope analysis: Climate Science : Using 10 Be and 14 C records to reconstruct solar activity cycles and climate fluctuations over millennial timescales Geochronology : Developing novel dating techniques using 36 Cl/ 10 Be ratios for ice cores and landscape features Geomorphology : Quantifying erosion dynamics in diverse environments from the Alpine foreland to South African pediments Oceanography : Tracing Atlantic water transport patterns using 129 I– 236 U dual tracers Radiochemistry : Advancing methods for nuclear forensics and environmental pollutant analysis Recent publications reveal trends in: Refining AMS systems for analyzing transuranic elements Quantifying landscape evolution through multi-isotope approaches Understanding ocean circulation pathways using artificial radionuclides Investigating soil dynamics in glaciated and tropical environments Correlating cosmogenic production with sea level and climate changes
Olivier Tougait is a Professor at the Chemistry, materials and processes for sustainable nuclear power (CIMEND) department within the Unité de Catalyse et Chimie du Solide (UCCS) at Université Lille . He specializes in solid-state chemistry, nuclear materials, and actinide-based compounds, with a focus on understanding fuel cycle processes for nuclear energy. Academic Background: PhD in Chemistry (1998, Université de Rennes1), Postdoctoral Fellow at Northwestern University (1998-2000). Career: Lecturer at Rennes1 (2000-2014), now Professor at UCCS since 2014. Collaborations include the French Alternative Energies and Atomic Energy Commission (CEA) , Orano , and Framatome . Research Interests: Actinide-based intermetallic compounds Phase diagrams of nuclear materials Magnetocaloric properties Fuel cycle process optimization Synthesis and thermodynamic behavior of uranium alloys Collaborative industrial nuclear R&D Publications since 2012 focus on: Uranium-molybdenum fuel characterization Germanium/Aluminum substitution in actinide systems Thermal stability of uranyl peroxide nanoclusters Crystallographic analysis of heavy-fermion materials Labs: Directs the joint research laboratories LR4CU and LRC PUMA, which collaborate with Orano and Framatome on nuclear fuel cycle innovations.
David Bastviken is a Professor at the Environmental Change Theme (TEMAM), Linköping University , specializing in environmental science and biogeochemical cycles. His research focuses on greenhouse gas emissions, particularly methane and carbon dioxide, from freshwater systems and human activities, with implications for climate policy and pollution management. Research Pillars : Aquatic greenhouse gas dynamics, chlorine cycling in soils, drinking water disinfection by-products, landscape-scale carbon budgets Methodologies : Drone-based sensing, hyperspectral imaging, sensor networks, cross-disciplinary ecosystem experiments Notable findings include the discovery of underestimated methane emissions from lakes and rivers, the role of trees in methane uptake , and natural chlorine production in boreal forests. His work has been funded by ERC , Formas , VINNOVA , and The Swedish Research Council . Recent publications highlight climate sensitivity of methane emissions, day-night emission patterns , and global methane budget modeling. He leads international collaborations across Amazonas , Arctic , and Boreal regions.
Thorsten Stumpf is a Professor and Director of the Institute of Resource Ecology at Helmholtz-Zentrum Dresden-Rossendorf (HZDR), with a joint professorship in Radiochemistry/Radioecology at Technische Universität Dresden. His work bridges fundamental chemistry and environmental safety in nuclear waste management. Research Interests: His research focuses on the molecular-level understanding of actinide and radionuclide behavior in the environment, including speciation, migration, and interaction with minerals, organic matter, and microorganisms. Key areas include radiochemistry, geochemistry, environmental chemistry, and nuclear waste disposal science. The recent publications reflect a strong trend in using advanced spectroscopic and synchrotron techniques (e.g., TRLFS, EXAFS, XRD) to study actinide speciation and redox behavior. Themes include bioassociation of radionuclides with plants and fungi, formation of actinide nanoparticles, and molecular interactions at mineral-water interfaces—critical for deep geological repository safety assessments. Scientific Awards: Fritz-Straßmann-Preis of the GDCh 'Fachgruppe Nuklearchemie' (2013) Advising and Grants: He has led significant research initiatives, including the Helmholtz-University Young Investigator Group and the Virtual Institute 'Advanced Solid – Aqueous Radiogeochemistry'. While specific students are not listed, his extensive publication record with multiple co-authors suggests active mentoring. His work is supported by Helmholtz Association funding and strategic collaborations. Labs and Teams: He leads the Institute of Resource Ecology at HZDR, which houses advanced laboratories for radiochemistry, spectroscopy, and environmental simulation. The institute is part of a larger network including CASUS and the Dresden High Magnetic Field Laboratory, enabling interdisciplinary research.
Dr. Peter Dunne is an Assistant Professor in Inorganic Energy Materials at Trinity College Dublin's Department of Chemistry. His research focuses on sustainable nanomaterials synthesis, particularly hydrothermal and solvothermal methods for producing inorganic nanocrystals. He has expertise in photocatalytic materials, layered double hydroxides, and 2D nanocomposites for water purification. Dunne's work emphasizes scalable production techniques and environmental impact assessment of nanomaterials. Education: BSc (Hons) Chemistry, National University of Ireland, Galway (2005) PhD in Chemistry, National University of Ireland, Galway (2009) Research Interests: His research integrates sustainable synthesis methods with advanced material characterization, emphasizing: Development of carbon dots from seaweed derivatives for optoelectronics Continuous-flow hydrothermal systems for energy materials Environmental lifecycle analysis of nanomaterial production Photocatalytic activity of transition metal-doped nanocrystals Current Project: Leading the SEAI-funded C-Weed project (2023–2026), exploring seaweed-derived carbon dots for energy applications like LEDs and photovoltaics. This work addresses sustainable materials design and renewable energy needs. Awards: No specific awards listed, but active in professional societies including the American Chemical Society. Grants/Labs: Recipient of SEAI funding for C-Weed project. Collaborates with international teams on nanomaterials projects, particularly in energy and environmental applications.
Dr Vincenzo Abbate is a Senior Lecturer in Bioanalysis at King's College London , affiliated with the Faculty of Life Sciences & Medicine and serving as Programme Director for the MSc in Analytical Toxicology . He holds a Pharm.D. (2004, Federico II University of Naples) and a PhD in Chemistry and Analytical Sciences (2008, The Open University) . Prominent research themes include: Metal Chelators for Medical/Diagnostic Applications New Psychoactive Substances (NPS) Toxicology Forensic Drug Analysis Nuclear Medicine Radiotracers Recent publications highlight advancements in nanoneedles for lipidomics , thallium-based radiopharmaceuticals , and stability studies of synthetic cathinones , with a focus on interdisciplinary collaborations across bioanalysis, synthetic chemistry, and clinical translational research . Scientific Recognition : Maplethorpe Fellowship (2008) Chartered Chemist (CChem) and Chartered Scientist (CSci) President of IUPAC Subcommittee on Toxicology and Risk Assessment His grants and projects include BBSRC , MRC , and Parkinson’s UK funding, with industrial partnerships like Theragnostics Ltd and TicTac Communications . He leads a team of 10 researchers and is actively involved in Spatial Biology Network and Multiscale Biofilm Research Hub initiatives.
Dr. Giancarlo Pascali is a Conjoint Associate Professor at the School of Chemistry, UNSW Sydney , and Radiochemistry Team Leader at ANSTO's Camperdown cyclotron site. With a PhD in "Innovative Biomedical Technologies" from the University of Lecce (2004), he has held research positions at IFC-CNR , NIH , and GMP facilities in Milan and Pisa. His expertise spans radiochemical methods , radiopharmaceutical development , and microfluidic automation for nuclear medicine production. Education: PhD in Innovative Biomedical Technologies, University of Lecce (2004) BSc in Chemistry, University of Pisa (2001) Research interests focus on M 3 : Molecules, Methods, Machines . In Molecules , he designs radiopharmaceuticals for cancer , dementia , and inflammatory diseases . For Methods , his work explores photochemistry , electrochemistry , and mechanochemistry to label biomolecules with 18 F and other isotopes. Under Machines , he pioneers microfluidic systems for automated radiochemistry, emphasizing safety and process reliability . Editorial & Leadership Roles: Editorial Board Member of Nuclear Medicine and Biology , Contrast Media & Molecular Imaging , and Current Radiopharmaceuticals Executive Board of ANZSNM , ARTnet , and ASMI Asia-Oceania Director and iSRS2025 Chair for SRS
William E. (Liam) Kieser is an Associate Professor in the Department of Physics at the University of Ottawa's Faculty of Science. His research focuses on accelerator mass spectrometry (AMS), ion source development, and isobar separation techniques. He leads the André E. Lalonde Accelerator Mass Spectrometry Laboratory. His work combines instrumentation innovation with applications in geology, environmental science, and biology. Kieser collaborates internationally to advance AMS technology for studying Earth processes and complex systems. Education: Not explicitly listed in text Affiliations: Department of Physics, André E. Lalonde AMS Lab Research interests include experimental condensed matter physics, mass spectrometry instrumentation, radiocarbon dating, and analysis of platinum/actinide elements. Key techniques involve ion beam cooling, gas-phase reactions, and low-concentration isotope detection (down to 1-in-10¹⁶ levels). Publications emphasize AMS method development for chlorine isotopes, platinum group elements, and iodine-129. Recent work (2005-2009) highlights advancements in gas ion sources, reaction cells, and low-level elemental analysis for insulating materials. His research bridges physics innovation with real-world environmental and geological applications. Grants/Awards: None explicitly mentioned Lab Focus: André E. Lalonde AMS Lab
Joseph Cotruvo is a Professor of Chemistry at the Department of Chemistry, Pennsylvania State University. His research focuses on understanding metal selectivity in biological systems, particularly lanthanides and transition metals, with applications in biotechnology, environmental science, and disease mechanisms. He leads the Cotruvo Lab, which develops biochemical and chemical biology tools to study metal ion acquisition, trafficking, and utilization in bacteria and human pathogens. Education: Ph.D., Chemistry, Massachusetts Institute of Technology (2012); A.B., Chemistry, Princeton University (2006). Research interests include lanthanide-dependent enzymology, protein engineering for rare earth element separations, and transition metal roles in neurodegenerative diseases. The lab designs fluorescent sensors, genetically encodable tools, and protein-based systems for metal detection and recovery. Recent work emphasizes actinide/lanthanide speciation, biohydrometallurgy, and biomolecular mechanisms of metal ion transport. Notable achievements include the discovery of lanmodulin—a highly selective lanthanide-binding protein—and its application in rare earth element recovery. His lab pioneered protein-based approaches for high-purity rare earth separations and developed manganese(II) fluorescent sensors. Research also explores iron-responsive riboswitches and copper-regulated lipid metabolism. Awards: Faculty Scholar Medal (2025), Blavatnik Finalist (2024), Eli Lilly Award (2024), Sloan Fellowship (2021), DOE Early Career Award (2020). Grants: NSF CAREER Award, Charles E. Kaufman Foundation, Jane Coffin Childs Memorial Fund. Labs/Teams: Cotruvo Lab (Penn State); collaborations with National Synchrotron Light Source, Lawrence Livermore National Laboratory. Future work targets scalable rare earth recovery systems, actinide-biomolecule interactions, and transition metal roles in infectious diseases.
Dr. Harald Foerstendorf serves as Group Leader of the "Analytics" group at the Institute of Resource Ecology, Helmholtz-Zentrum Dresden-Rossendorf (HZDR), a position held since 2022 following over two decades as a staff scientist at the institution. His research critically advances understanding of actinide and radionuclide behavior in environmental systems, with direct applications to nuclear waste disposal safety assessments and contamination remediation strategies. His academic foundation includes a PhD in Chemistry (1997) and Diploma in Chemistry (1992), both from Albert-Ludwigs-Universität Freiburg, where his doctoral work employed FT-IR spectroscopy to investigate photoreactions in plant receptors. PhD in Chemistry, Albert-Ludwigs-Universität Freiburg, 1997 Diploma in Chemistry, Albert-Ludwigs-Universität Freiburg, 1992 Foerstendorf's research centers on molecular-scale mechanisms of radionuclide interactions at environmental interfaces. He specializes in surface processes of actinides at liquid/solid boundaries, aqueous complexation with organic ligands, and in situ vibrational spectroscopy techniques. His work bridges fundamental chemistry with practical nuclear safety challenges, particularly in characterizing sorption dynamics on mineral surfaces relevant to repository systems. Analysis of his 15 most recent publications (2024-2013) reveals consistent focus on actinide speciation using multi-technique approaches. Key trends include advanced spectroscopic characterization (ATR FT-IR, EXAFS) of neptunium/uranium sorption on oxides, thermodynamic modeling of ligand interactions, and investigation of redox-sensitive elements like technetium. The research demonstrates increasing integration of computational methods with experimental data to resolve complex speciation scenarios. Research funding includes a German Research Foundation (DFG) grant (FO 619/1-1; 1-2) supporting fundamental studies from 2006-2009. While specific student advisees aren't documented in the source material, his leadership position implies mentorship of doctoral researchers within HZDR's structured doctoral programs. German Research Foundation (DFG) FO 619/1-1; 1-2 (05/2006-04/2009) As head of the Analytics group within the Actinide Thermodynamics department, Foerstendorf directs a specialized team operating advanced spectroscopic facilities including ATR FT-IR and EXAFS capabilities. The group maintains extensive collaborations across European nuclear research institutions and participates in international projects addressing long-term safety of radioactive waste disposal systems.
Dr. Christine Christ is a Researcher at the Faculty of Theology of the University of Basel. Her work spans theological disciplines with a focus on historical, ethical, and intercultural perspectives. Institution: University of Basel School: Faculty of Theology She contributes to research areas including theology, religious studies, ecumenism, and ethics, though specific projects are not detailed in the provided texts. Her role involves academic collaboration and guest research initiatives. Recent publications highlight trends in soil science, environmental monitoring, and climate-related research, suggesting potential interdisciplinary engagements or data inconsistencies. These works address multi-scale soil quality frameworks, sediment source apportionment, peatland carbon dynamics, and radionuclide tracing methodologies. Dr. Christ's contact details include the email christine.christ@unibas.ch . No scientific awards or student supervision details are mentioned in the provided data.