Professor Patrick Steel is a faculty member at Durham University in the Department of Chemistry . His work spans Synthetic Organic Chemistry , Organosilicon Chemistry , and Chemical Biology , with applications in pharmaceuticals, agrochemicals, and parasitic disease treatment. Research Highlights: Developing C-H borylation methods for pharmaceutical intermediates Exploring silene cycloadditions for alkene functionalization Designing small molecule probes for plant and parasite biology Collaborating with Todd Marder (Würzburg) and others in synthetic biology Key Collaborations: Partnerships with pharmaceutical companies (GSK, Pfizer) and academic teams focus on novel antileishmanial compounds and herbicide resistance mechanisms . His group's organosilicon work intersects with collaborations on stereoselective synthesis and natural product analogs . Recent Publications (2025-2021) demonstrate expertise in transition metal catalysis , chemical probe development , and neglected disease research . The 2023 Leishmania proteomics and 2022 miltefosine studies show translational impact.
Sebastian U. Stich is a tenured Professor at CISPA Helmholtz Center for Information Security and a member of the European Lab for Learning and Intelligent Systems (ELLIS). His research focuses on optimization for machine learning, collaborative learning (distributed, federated, and decentralized methods), efficient optimization techniques, adaptive stochastic methods, and privacy/security in machine learning. Recent appointments include ERC Consolidator Grant 2024 for the CollectiveMinds project. Key contributions in federated/decentralized learning, uncertainty estimation, and communication-efficient optimization. Active in workshop organization, including the Optimization for Machine Learning workshop at NeurIPS 2024. Teaching modern optimization methods at Saarland University (2023-2025). His work has been recognized with awards such as the Google Research Scholar Award (2023) and Meta Privacy-Enhancing Technologies Award (2022) . His research group includes postdocs Dr. Anton Rodomanov and Dr. Rotem Mulayoff, and PhD students Xiaowen Jiang and Yuan Gao.
Dr. Joseph Ndogmo is a Senior Academic Councillor in civil service for life at the Chair of Metal Construction at the Technical University of Munich (TUM), working under Prof. Martin Mensinger. He has been with the Chair since December 2005, initially as a Research Assistant, then as an Academic Councillor on probationary civil service status from November 2007 to June 2009, and as an Academic Councillor in civil service for life from July 2009 to June 2014, before being promoted to his current position as Senior Academic Councillor in July 2014. Dr. Ndogmo's educational background includes: Primary school in Yaoundé, Cameroon (1972-1978) High school in Batouri and Mbouda, Cameroon (1978-1985) Studies in Mathematics/Computer Science at the University of Yaoundé, Cameroon (1985-1986) Language course at the Herder Institute in Leipzig (1986-1987) Diploma in Engineering (Dipl.-Ing.) from the Friedrich List University of Transport in Dresden, majoring in road construction with specialization in bridge construction (1987-1992) Doctorate (Dr.-Ing.) from Technical University of Munich with thesis on "On the safety and economic reinforcement of bulging web plates of solid-wall girder bridges taking fatigue into account" (awarded November 27, 1997) Training as an international welding engineer at SLV Munich (January-April 2008) Dr. Ndogmo's research focuses on structural engineering with particular expertise in steel and composite bridge construction. His primary research interests include: Overall stability of steel composite bridges Plate and shell buckling phenomena External reinforcement elements for composite bridges Buckling verification according to Eurocode 3 standards Welding technology applications in structural engineering His work bridges theoretical structural mechanics with practical engineering applications, particularly in the context of bridge construction and maintenance. Dr. Ndogmo has made significant contributions to the understanding of buckling behavior in stiffened plates under various loading conditions, with numerous publications addressing both theoretical aspects and practical implementation of Eurocode standards. Dr. Ndogmo's recent publications (2016-2024) demonstrate a consistent focus on buckling analysis of steel structures, particularly in bridge applications. His work shows increasing sophistication in analyzing complex loading scenarios including biaxial stresses and eccentric load introduction. He has made notable contributions to the implementation of Eurocode 3 standards, particularly Part 1-5 on plate buckling. His research combines experimental testing with numerical analysis, providing practical insights for structural engineers. Professional memberships include: VSVI (Association of Road Construction and Traffic Engineers in Bavaria) DVS (The Connection Specialists) Technical Working Group 8.3 (Plate buckling) Working Group EN 1993-1-5 Working Group EN 1993-1-14 CEN / TC 250 / SC 3 / WG22 Dr. Ndogmo is actively involved in teaching at TUM, with courses including Assessment and preservation of historic steel structures, Welding Technology, Composite building and bridge construction, and Plate buckling and steel bridge construction. He also serves as a municipal councilor in Erdweg since 2014 and previously ran as a mayoral candidate in 2017 (finishing second with 32.4% of the vote).
Professor Georg Guggenberger is a distinguished academic at Leibniz University Hannover, where he serves as Professor of Soil Chemistry within the Department of Soil Science at the Institute of Earth System Sciences, Faculty of Natural Sciences. In addition to his research and teaching responsibilities, he holds several significant administrative positions including Vice Dean for Research in the Dean's Office of the Faculty of Natural Sciences, Executive Management at both the Institute of Soil Science and Department of Soil Science levels, and Chair of the Selection Committee for the M.Sc. Landscape Sciences program. Prof. Guggenberger's research program focuses on fundamental processes governing soil organic matter dynamics across diverse ecosystems worldwide, from Arctic to tropical regions. His work investigates biotic and abiotic factors influencing the formation, transport, and stabilization of soil organic matter, with particular emphasis on soil fertility maintenance. He employs advanced methodologies including stable isotope approaches, biomarker analyses, microspectroscopic techniques (XPS, ESEM, NMR, NanoSIMS), and molecular biological methods to study biogeochemical interactions on mineral surfaces, dissolved organic matter dynamics, plant-mycorrhizal-soil interactions, permafrost soil organic matter, and impacts of land use and climate change on soil organisms. Analysis of Prof. Guggenberger's recent publications reveals a strong interdisciplinary research program spanning soil biogeochemistry, carbon cycling, soil microbiology, and climate change impacts. His work integrates field experiments along environmental gradients with laboratory manipulation studies to identify underlying mechanisms. The research shows particular strength in understanding organic matter stabilization mechanisms, microbial contributions to soil processes, and development of sustainable soil management practices that address climate change challenges. Prof. Guggenberger actively contributes to academic service through his leadership roles in examination boards and committees, including the Examination Board for Geosciences programs and the Selection Committee for Landscape Sciences. His administrative responsibilities as Vice Dean for Research demonstrate his commitment to advancing research within the Faculty of Natural Sciences at Leibniz University Hannover.
Professor Nick Vivyan is a Professor in Political Science at Durham University's School of Government and International Affairs, where he joined as Lecturer in Quantitative Social Research in 2010 and was promoted to Professor of Politics in 2018. He serves as Fellow of the Durham Research Methods Centre and Professor at the Centre for Institutions and Political Behaviour. Education: PhD in Political Science, London School of Economics (2010) Visiting Researcher, Stanford University (2008) Vivyan specializes in quantitative and experimental analysis of political behaviour, accountability, and representation with UK focus. His research bridges British politics, legislative studies, political economy, public opinion, and electoral systems through rigorous methodological innovation. He particularly examines voter-MP relationships, electoral dynamics, and methodological challenges in survey research. His recent publications reveal consistent focus on electoral behaviour measurement (turnout misreporting, constituency opinion estimation), legislative accountability mechanisms, and cross-national polarization trends. Methodologically, he pioneers experimental designs and survey innovations while maintaining historical and comparative perspectives. Supervision & Grants: PhD supervision in British/comparative politics, electoral behaviour, and legislative politics (e.g., Elisabeth de Vega Alavedra) Principal investigator on ESRC, British Academy, and Leverhulme Trust grants including £504k ESRC/AHRC project on electoral violence (1832-1914) Co-investigator on international projects funded by Austrian National Bank and European research councils As founding member of Durham's Centre for Institutions and Political Behaviour, Vivyan contributes to interdisciplinary research on political institutions and citizen behaviour while serving on the Editorial Board of Electoral Studies .
Juan-Pablo Correa-Baena is an Associate Professor at the Georgia Institute of Technology , holding the Goizueta Early Career Faculty Chair in the School of Materials Science and Engineering. He leads the Materials for Solar Energy Harvesting and Conversion research initiative at the Institute for Materials (IMat) and Strategic Energy Institute, aiming to consolidate Georgia Tech's expertise in photovoltaics and interdisciplinary energy research. Education: PhD in Environmental Engineering, University of Connecticut (2014) MS in Environmental Engineering, University of Connecticut (2011) BS in Management and Engineering for Manufacturing, University of Connecticut (2008) His research focuses on the chemistry-structure-property relationships of low-cost semiconductors for optoelectronic applications. Key areas include halide perovskites , nanoscale control , and advanced deposition/characterization techniques . He develops atomic layer deposition and synchrotron-based imaging to address metastable material behavior. Recent publications highlight innovations in dimensional control , machine learning for thermal stability , and flexible photovoltaic devices . His work integrates materials synthesis , quantum phenomena , and industrial scalability . Scientific recognition: Highly Cited Researcher (Web of Science, 2019–2021) Nature Index Leading Early Career Researcher in Materials Science (2019) NSF, DoE, and industry-funded projects Students and team: He advises 14 graduate students and postdocs, including Sanggyun Kim, Diana LaFollette, and Leonardo Josué Lugo Salas, fostering interdisciplinary collaboration through workshops and symposia.
Dr. J. David Frost is the Elizabeth and Bill Higginbotham Professor of Civil Engineering at Georgia Institute of Technology and a Regents' Entrepreneur. He has held academic positions at Purdue University and Georgia Tech, with a focus on geotechnical engineering and disaster response. As founding director of Georgia Tech's Savannah campus and head of the Geosystems Engineering Group, Frost has shaped academic programs and research initiatives. Education: B.A.I and B.A. in Civil Engineering and Mathematics, Trinity College, Dublin (1980) M.S. and Ph.D. in Civil Engineering, Purdue University (1986, 1989) Research Interests span geotechnical engineering, bio-inspired design, and disaster resilience. His work emphasizes digital data collection systems for subsurface hazard assessment, soil-polymeric material interactions, and geotechnical responses to earthquakes, hurricanes, and anthropogenic disasters. Recent projects integrate ant nest geometry, plant root mechanics, and geosynthetic innovations into infrastructure solutions. Scientific Contributions include two U.S. patents for subsurface data systems, leadership in NSF-funded post-disaster reconnaissance missions (e.g., 9/11, Türkiye earthquakes), and co-founding the Geotechnical Extreme Events Reconnaissance (GEER) Association. His articles reflect expertise in bio-inspired geotechnics, machine learning for disaster modeling, and advanced computational simulations. Awards & Recognition: ASCE Huber Civil Engineering Research Prize NSF National Young Investigator Award Georgia Society of Professional Engineers Engineer of the Year in Education Coastal Business & Education Technology Alliance Leadership Innovation Award Professional Engagement includes chairing the Savannah Area GIS board, advising on ASCE Geo-Legislative Committees, and founding a software company serving 350+ global clients. His work bridges academia, policy, and industry innovation.
Dr. Sanandam Bordoloi is an Assistant Professor at the Department of Civil Engineering, Aalto University's School of Engineering, specializing in Geotechnical and Geo-environmental Engineering. He earned his PhD from Indian Institute of Technology (IIT) Guwahati and has held postdoctoral positions at Hong Kong University of Science and Technology (HKUST) and University of Illinois at Urbana-Champaign (UIUC). Expertise in unsaturated soil mechanics Specializing in biochar applications for geotechnical systems Focus on carbon capture and waste valorization Developed novel techniques for soft clay remediation Recipient of Telford Premium Prize His recent publications highlight trends in biochar-amended composites , CO2 mineralization , landfill restoration , and soil-hydrological interactions . Key subfields include contaminant transport mechanisms, cementitious material innovation, and root-soil feedback systems. Scientific Awards: Telford Premium Prize for exceptional civil engineering research
Gina-Gail S. Fletcher is a Professor of Law and Associate Dean for Intellectual Life at Duke University School of Law. She specializes in financial regulation, market manipulation, and corporate governance, with a focus on racial inequality, ESG frameworks, and AI accountability in financial systems. Professor of Law, Duke University (2024) Associate Dean for Intellectual Life, Duke Law (2024) Member, U.S. SEC Investor Advisory Committee (2024) Member, FINRA Investor Issues Committee (2024) Her research integrates legal and policy analysis on financial systems, emphasizing transparency, equity, and stability. Key themes include: AI and transparency in financial regulation Racial equity in banking and lending practices Climate-conscious procurement policies ESG compliance and fraud Market manipulation and macroeconomic consequences Recent publications appear in Yale Law Journal , New York University Law Review , and Vanderbilt Law Review , with forthcoming work on AI regulation and racial complicity in finance. She received her J.D. cum laude from Cornell Law School and B.A. magna cum laude from Mount Holyoke College.
Johan Meyers is a full Professor at KU Leuven's Faculty of Engineering Science, Department of Mechanical Engineering, where he heads the Applied Mechanics and Energy conversion (TME) research unit. He serves as a contact person for TME and is an active member of the KIES – KU Leuven Institute for Energy and Society. His administrative roles include membership on the Council of the Faculty of Engineering Science, the Mechanical Engineering Department Council and Board, and chairing the HPC Steering Committee. Professor Meyers' research focuses on turbulent flow simulation and optimization, with particular emphasis on wind energy applications, atmospheric pollutant dispersion, and computational methods. His work spans Direct Numerical Simulation (DNS), Large-Eddy Simulation (LES), and model reduction techniques for applications in energy engineering. Current research categories include flow control & optimization, wind farm engineering, and atmospheric pollutant dispersion modeling, with specific applications in radioactive release scenarios and wind turbine system optimization. His recent publications demonstrate a strong trend toward wind energy applications, particularly in optimizing wind farm layouts and operations through advanced computational methods. The research shows significant emphasis on Large-Eddy Simulation techniques to study atmospheric boundary layer interactions with wind farms, with growing interest in hybrid wind-solar energy systems and the effects of surface temperature heterogeneity on flow patterns. His work increasingly integrates machine learning approaches to enhance computational efficiency in wind farm modeling. Professor Meyers actively supervises numerous PhD students including Bon, T., Janssens, N., Jamaer, S., and ALREWENY, A., among others. His research is supported by multiple ongoing projects through 2028, including 'Wind-farm co-design in the North-Sea basin given climate and market uncertainty' and 'Reconstruction of turbulence from partial observations,' primarily funded by research councils and industry partnerships. He leads the Turbulent Flow Simulation and Optimization (TFSO) research group, which develops efficient supercomputing simulation tools for turbulent flow applications in energy engineering. The group specializes in wind farm optimization, atmospheric pollutant dispersion modeling, and airborne wind energy systems, with a particular focus on LES studies of wind farm interactions with the atmospheric boundary layer.
Patrick Schneider is an Assistant Professor in the Department of Economics and Public Policy at Imperial Business School , UK. He completed his PhD at the London School of Economics and Political Science and previously worked as an Economist at the Bank of England (2015-2018). His research lies at the intersection of macroeconomics, household finance, and public economics, with a focus on unconventional stabilization policies and behavioral biases. Education: PhD Economics, London School of Economics and Political Science (2025) MPhil Economics, University of Oxford (2015) Bachelor of Economics (Hons) & Bachelor of Arts, UNSW Sydney (2011) His recent work explores how behavioral biases affect retirement account access policies and intergenerational equity. Analysis of his publications reveals trends in macroeconomic policy distributional effects , productivity dynamics , and market power . He has contributed to debates on Brexit's economic implications and stabilization mechanisms in financial systems. While no specific scientific awards are documented, his research engages with critical policy questions through empirical analysis and behavioral economic modeling. He maintains an active presence on academic and policy discussions via platforms like Bluesky, focusing on macroeconomic policy transparency and trust in financial systems.
Dominik Roeser is a Professor and Associate Dean of Research Forests & Community Outreach at the University of British Columbia's Faculty of Forestry, Department of Forest Resources Management. With over 21 years of experience in forest research and innovation, he has built a comprehensive forest operations research program since joining UBC in 2018, following his tenure as Senior Director at FPInnovations where he managed multidisciplinary teams focused on improving forest sector competitiveness and wildfire management solutions in Western Canada. Professor Roeser's research interests center on sustainable forest management and the bioeconomy, with specific expertise in forest bioproduction, supply chain design, steep slope harvesting, and biomass operations. His work through the Forest Action Lab applies diverse research methods including productivity studies, field trials, and modeling to address sustainability challenges across different operational environments. His research portfolio spans sustainable forest biomass utilization, harvesting in difficult terrain, innovative forest planning tools, operational productivity, carbon management, and community sustainability impacts from reforestation. His publication record shows a strong focus on practical applications of forest science, with recent work emphasizing wildfire management, remote sensing technologies for precision forestry, biomass energy systems, and the socio-ecological dimensions of forest management. His research increasingly integrates advanced technologies like LiDAR and drone-based systems with traditional forest operations to address contemporary challenges in sustainable forest management. Roeser has received the Recognition Award from the Canadian Forest Service (2017) for his contributions to forest science and innovation. His work demonstrates significant impact on both academic understanding and practical implementation of sustainable forest operations across North America and Europe. As an educator, Professor Roeser teaches several key courses including FOPR 264 Introduction to Forest Operations, FOPR 362 Harvesting systems and forest access, FOPR 464 Operational planning and management, and FRST 452 Coastal field school. He considers educating the next generation of forestry professionals one of his passions, bridging theoretical knowledge with practical industry applications. The Forest Action Lab, led by Professor Roeser, represents a multidisciplinary research hub applying diverse methodologies to address forestry stakeholders' needs across British Columbia, Canada, and globally. The lab's work connects academic research with industry implementation, focusing on practical solutions for sustainable forest utilization in varied operational environments.
Kiwon Um is a tenured Assistant Professor in the Computer Graphics group at Télécom Paris, France, since October 2019. He focuses on physics-based simulations and data-driven approaches using deep learning, with an emphasis on human visual perception in computer graphics and engineering applications. Education: Ph.D. in Computer Science and Engineering from Korea University His research explores effective simulation of natural phenomena through refined data utilization and develops reliable data acquisition methods for machine learning. He also investigates perceptual evaluation of simulations to advance numerical method understanding. Recent work trends include: (1) turbulence modeling with machine learning integration, (2) elastic material simulation stability, (3) fluid dynamics optimization, and (4) differentiable physics frameworks. His publications range from 2008 to 2025, covering topics like SPH solvers, porous shell simulations, and numerical method validation.
Dr. Martin Rohde is a Professor and Group Leader at the Radiation Science & Technology department within the Faculty of Applied Sciences at Delft University of Technology (TU Delft) in the Netherlands. He leads the Transport Phenomena & Nuclear Applications research group, focusing on advanced nuclear reactor technologies, particularly molten salt reactors, and their associated transport phenomena. Professor Rohde's research interests span across several critical areas in nuclear engineering and fluid dynamics. His work primarily focuses on understanding transport phenomena in nuclear applications, with particular emphasis on molten salt reactors for sustainable and safe nuclear power generation, innovative production techniques of medical isotopes, and advanced energy storage systems like flow batteries. His research group actively investigates complex physical phenomena occurring under extreme conditions such as high pressures, high temperatures, and interactions with radioactive processes. His publication record demonstrates a strong focus on computational methods for nuclear applications, particularly the Lattice Boltzmann Method (LBM), which is used to model fluid flow, heat transfer, and phase change phenomena in nuclear systems. Recent work has concentrated on freezing and melting processes in molten salt reactors, microfluidic separation techniques for medical isotopes, and advanced modeling of flow batteries. His research shows a clear progression toward increasingly sophisticated numerical methods applied to real-world nuclear engineering challenges. Professor Rohde has secured significant funding through multiple European Commission projects including ENDURANCE, MIMOSA, and ReZilient, demonstrating the international recognition of his research. He has supervised numerous PhD and MSc students, many of whom have gone on to complete theses on topics related to molten salt reactors, microfluidics, and flow battery technology. His research group includes several technicians, post-doctoral researchers, and PhD candidates working collaboratively on cutting-edge nuclear technology. The Transport Phenomena & Nuclear Applications laboratory operates several specialized facilities including the ESPRESSO facility for measuring melting and solidification under convective boundaries, and experimental setups for studying molten salt behavior, microfluidic purification, and flow battery technology. The group maintains strong collaborations with international partners including TRIUMF (Canada), NRG, and URENCO (The Netherlands).
Professor Yusuf Karbhari is a Professor of Accounting at Cardiff Business School, Cardiff University. With a distinguished career spanning several decades, he has established himself as an expert in accounting, particularly in the areas of public sector accounting, Islamic finance, and corporate governance in emerging economies. His work bridges theoretical frameworks with practical applications across diverse economic contexts, from the UK public sector to Middle Eastern and Southeast Asian financial systems. Professor Karbhari holds a PhD and MBA from institutions in Wales, along with a BA (Hons) degree. His educational background has provided the foundation for his extensive research career focused on accounting practices in both developed and emerging economies. Professor Karbhari's research interests encompass a wide range of topics including Accounting and Accountability in government sectors across the Middle East and Malaysia, Accounting practices of UK Executive Agencies, International Government Accounting, Communicative Effectiveness of International Auditor's Reports, Financial Reporting and Performance Measurement in UK Central Government, and Managerial and Accounting Reforms in the Public Sector. His work particularly emphasizes the intersection of traditional accounting principles with cultural and religious contexts, especially in Islamic finance systems. His extensive publication record demonstrates a consistent focus on accounting practices in emerging economies, with particular attention to Islamic banking and finance, corporate governance structures, and public sector accounting. Over the past decade, his research has increasingly examined the role of Sharia boards in Islamic financial institutions, environmental disclosure practices, and the relationship between governance mechanisms and financial performance in diverse economic contexts. Professor Karbhari is available for postgraduate supervision and has research interests that align with his expertise in Accounting and Auditing in Emerging Economies, International Public Sector Accounting, Corporate Governance in emerging economies, and Islamic Banking and Finance. He teaches undergraduate courses in Accounting for Decision Making and Control (Year 2) and Public Sector Accounting (Year 3).