Manolis Chatzis is an Associate Professor in the Department of Engineering Science at the University of Oxford and a Tutorial Fellow at Hertford College. His research focuses on dynamic systems and earthquake engineering, particularly modeling risks for unanchored structural and non-structural components subjected to ground motions. University of Oxford - Department of Engineering Science Hertford College - Tutorial Fellow His work on system identification and observability of nonlinear systems aims to optimize sensor setups for infrastructure reliability. Recent publications address discontinuous Kalman filters for non-smooth dynamics, energy loss in rocking bodies, and experimental validation of seismic response models. Applications span seismically isolated buildings, museum artifacts, hospital equipment, and supercomputers. Key research trends include: Nonlinear dynamics of rocking/sliding systems Bayesian identification methods Energy dissipation mechanisms 3D motion tracking algorithms Sensor fusion and data-driven modeling His publications since 2010 demonstrate interdisciplinary collaboration across civil, mechanical, and computational engineering domains.
Yue Li is the Leonard Case Jr. Professor in the Department of Civil and Environmental Engineering at Case Western Reserve University. He specializes in resilient and sustainable infrastructure systems, focusing on structural reliability, probabilistic design, and climate change adaptation. His research addresses risk assessment for infrastructure under extreme events, including earthquakes, hurricanes, and climate impacts. Education: PhD in Civil Engineering, Georgia Institute of Technology, 2005 Research Interests: Dr. Li’s work integrates advanced statistical methods and data-driven approaches to enhance infrastructure resilience. Key areas include: Probabilistic modeling of structural systems Risk-informed decision-making for multi-hazard mitigation Climate change impacts on material durability and performance Asset management and lifecycle cost analysis Notable Contributions: His recent publications emphasize data-driven resilience metrics for water systems and seismic risk assessment for bridges. He has pioneered frameworks for evaluating infrastructure vulnerability under climate change, including corrosion effects and extreme weather adaptation. Awards: ABSE Outstanding Paper Award (2023) Case School of Engineering Teaching Award (2020) Nomination for John S. Diekhoff Award (2019) Leadership Roles: Dr. Li serves as Section Editor for the ASCE Journal of Structural Engineering and chairs multiple technical committees on safety and reliability. He leads initiatives to standardize multi-hazard design practices and resilience evaluation methodologies.
Beate Paulus is a Professor for Theoretical Chemistry at the Freie Universität Berlin , affiliated with the Chemistry and Biochemistry college and the Chemistry department. Her research focuses on advanced quantum chemical methodologies and applications to 2D materials, spintronics, and catalysis. Current affiliation: Freie Universität Berlin Key research areas: Quantum Chemistry, Density Functional Theory, 2D Materials, Spintronics, Electrocatalysis Her work spans computational modeling of electronic structures, magnetic properties, and chemical reactions using Density Functional Theory (DFT) with specialized corrections. She investigates systems like MoS2 , graphene heterostructures , and transition metal complexes , aiming to understand and optimize properties for energy applications, biosensors, and nanoelectronics. Recent publications highlight her contributions to quantum mechanical fluorine tunnelling , spin-selective transport in doped nanoribbons , and surface functionalization strategies for 2D materials. Her group also explores mechanically interlocked molecules and redox-responsive polymers with potential biomedical applications. Beate Paulus leads the Paulus Group , which actively publishes in high-impact journals and collaborates on interdisciplinary projects involving experimental and theoretical approaches.
Bernadette Byrne is a Professor and Associate Dean (Equality, Diversity and Inclusion) at the Faculty of Natural Sciences, Imperial College London, within the Department of Life Sciences. She leads research on membrane protein structure and function, focusing on transporters, receptors, and advanced vibrational spectroscopy techniques for antibody behavior analysis in collaboration with Prof. Sergei Kazarian. Her work is funded by BBSRC, EPSRC, MRC, and EU programs. Affiliations include the Agri Futures Lab, Bacterial Pathogenesis Group, Centre for Structural Biology, and Industrial Biotechnology Hub. She has served as an external examiner at the University of Cambridge and University of Edinburgh, and chairs the BBSRC Committee D. Research interests span membrane biology, biochemistry, structural biology, and biophysics. Recent studies emphasize detergent engineering for protein stabilization and industrial bioprocessing challenges. Her publications highlight innovations in membrane mimetic systems, GPCR signaling, and protein aggregation analysis. She actively contributes to interdisciplinary initiatives such as the Chemical Biology CDT and the Membrane Receptor Network.
Elliot Hui, Ph.D., is an Associate Professor in the Department of Biomedical Engineering at the University of California, Irvine (UCI), within the Samueli School of Engineering. His research focuses on biological microtechnology, including spatial cell biology, microscale tissue engineering, global health diagnostics, and microfluidic computing. He leads the Hui Lab, which develops tools for automating biochemical reactions, controlling cellular organization, and understanding tissue development dynamics. Key achievements include pioneering microfluidic logic systems for autonomous laboratory automation and creating novel cell culture platforms to study intercellular communication in tissues. His work bridges engineering and biology, addressing challenges in diagnostics and regenerative medicine. Notable contributions include the development of a programmable finite state machine for microfluidic control and a SLAS Fellowship awarded to his student Erik. Research Interests: Microfluidic devices, cell-cell interaction modeling, tissue engineering, and lab-on-a-chip systems. Labs/Teams: Hui Lab at UCI, specializing in microscale biological systems and automation. Publications span topics such as microfluidic computing architectures, tissue dissociation devices, and Bayesian experimental design. His work emphasizes applications in global health diagnostics and mechanistic studies of cellular processes.
Professor JC Ji is a distinguished academic at the School of Mechanical and Mechatronic Engineering at the University of Technology Sydney (UTS), where he was promoted to Professor on January 3, 2025, after serving as an Associate Professor since January 1, 2016. He serves as the Theme Research Director at the Centre for Audio, Acoustics and Vibration (CAAV) at UTS and is an active member of the Faculty of Engineering and Information Technology. Professor Ji holds a PhD in Mechanical Engineering from Australia and a Graduate Certificate from UTS, along with CPEng NER certification from Engineers Australia since 2018. Professor Ji's research spans multiple interdisciplinary areas with significant practical applications. His primary research interests include Dynamics, Vibration and Vibration Control (focusing on wind turbine dynamics, rotor-bearing systems, and vibration isolation); Machine Condition Monitoring and Asset Management (specializing in fault diagnostics, prognostics, and digital twin-based modeling); Renewable Energy and Sustainability (particularly in vibration-based energy harvesting and battery circular economy); Mechanical and Vehicle Systems; Robotic and Multi-Agent Systems; and Ecological Systems. His work demonstrates a strong integration of theoretical foundations with practical engineering solutions for real-world problems. Analysis of Professor Ji's recent publications reveals a clear research trajectory focused on advanced vibration control systems, condition monitoring techniques, and digital twin applications. His work increasingly integrates machine learning with traditional mechanical engineering approaches, particularly in bearing and gear health management. A significant portion of his recent research focuses on quasi-zero stiffness vibration isolators using innovative structural designs including origami-inspired mechanisms. His publications show strong international impact with numerous high-citation articles in top mechanical engineering journals. Stanford University's World's Top 2% Scientists List for both career-long impact and single-calendar year impact in 2023 and 2024 CPEng NER Chartered Engineers certification from Engineers Australia (2018-present) Professor Ji actively supervises research students and has secured substantial funding for his work, including multiple ARC Discovery and Linkage Projects. He serves as an Associate Editor for Mechanical Systems and Signal Processing (Q1 journal), Journal of Vibration and Control (Q2 journal), and International Journal of Bifurcation and Chaos (Q2 journal). He is also an active assessor for ARC grant applications since 2007 and for international funding bodies including Hong Kong RGC, Belgium FNRS, and New Zealand MBIE. His industry collaborations include projects with Zip Heaters, Alstom Transport, and Coal Services Health and Safety Trust. As Theme Research Director at the Centre for Audio, Acoustics and Vibration (CAAV) at UTS, Professor Ji leads a research team focused on advancing vibration control technologies and their applications. His laboratory work includes developing innovative vibration isolators, condition monitoring systems for industrial machinery, and energy harvesting technologies. The research group maintains strong connections with industry partners to ensure practical implementation of their theoretical advancements.
Sonja Sudimac is a Postdoctoral Fellow at the Center for Environmental Neuroscience, Max Planck Institute for Human Development, Berlin. Her research investigates neural and physiological mechanisms through which natural and urban environments influence stress, emotions, and cognitive processes using fMRI and physiological monitoring. Her educational background includes: Dr. rer. nat. (2024) from Freie Universität Berlin MSc in Cognitive Science (2019) from Technische Universität Kaiserslautern MSc in Educational Psychology (2016) from University of Belgrade BSc in Psychology (2015) from University of Belgrade Sudimac's research centers on environmental impacts on brain function, with specific focus on amygdala reactivity during stress exposure, gender-specific responses to nature, and neural correlates of restorative experiences. She employs controlled one-hour walk paradigms in forest versus urban settings to isolate physiological and cognitive changes, emphasizing applications for mental health optimization through environmental design. Analysis of her publication record reveals consistent methodological emphasis on fMRI to quantify neural plasticity changes, particularly in limbic system structures. Recurring themes include nature-induced amygdala deactivation, hippocampal plasticity linked to cognitive restoration, and perceptual processing differences in urbanized environments, spanning interdisciplinary intersections of neuroscience, environmental psychology, and urban planning. No scientific awards are mentioned in available sources. No advisees or research grants are detailed in the provided institutional profile. Sudimac actively contributes to the Environmental Neuroscience Research Team, which conducts collaborative studies on environmental-brain interactions using multimodal neuroimaging and physiological assessment to inform evidence-based design of health-promoting spaces.
Bozidar Stojadinovic is a Full Professor and Chair of Structural Dynamics and Earthquake Engineering at ETH Zürich's Department of Civil, Environmental and Geomatic Engineering. He leads the Institute of Structural Engineering and previously held professorships at UC Berkeley and the University of Michigan. His research focuses on community disaster resilience, seismic design, and experimental methods like hybrid simulation. Education: PhD in Civil Engineering, UC Berkeley (1995) MS in Civil Engineering, Carnegie-Mellon University (1990) BS in Civil Engineering, University of Belgrade (1988) Research Interests: Performance-based probabilistic resilience evaluation of civil infrastructure. Earthquake engineering, including seismic isolation and response modification techniques. Development of experimental testing methods, such as hybrid simulations for dynamic structural analysis. Awards: ICE Journal John Henry Garrood King Medal (2023) ACI Chester Paul Siess Award (2017) NSF CAREER Award (1999) Teaching & Advising: Teaches courses on seismic design and structural dynamics at ETH. Advised 49 doctoral students to date. His work integrates advanced methodologies to enhance structural resilience against natural hazards. Labs/Teams: Leads ETH's Institute of Structural Engineering, advancing research in seismic protection and infrastructure resilience through experimental and computational innovations.
Zeynep Atamer is an Assistant Professor at Oregon State University's Food Science and Technology Department, affiliated with the Food Innovation Center in Portland, OR. Her research focuses on dairy science and technology, particularly bacteriophage dynamics, spore inactivation, milk protein behavior, membrane processing, and food safety optimization. Primary affiliation: Oregon State University, Food Innovation Center Department: Food Science and Technology Research interests include: Dairy bacteriophages and their thermal/non-thermal inactivation Spore-forming bacteria in dairy processing Milk protein fractionation and functional properties Membrane separation technologies for dairy applications Cheese and fermentation process optimization Development of phage-free dairy products and sensitive detection systems Recent publications highlight advancements in UV-C/phage reduction strategies, casein-based material development, bitter peptide characterization in cheese, and encapsulation technologies for microbial control. Key subfields include dairy processing stressors, whey protein stability, and gut microbiota modulation via phage delivery. Her work integrates industrial-scale validation with lab-to-commercial translation, addressing critical challenges in dairy safety and functionality through interdisciplinary approaches spanning microbiology, biochemistry, and food engineering.
Laura Antona is an Assistant Professor (Education) of Human Geography at the London School of Economics and Political Science (LSE), Department of Geography and Environment. Her work bridges feminist political economy, urban geography, and critical migration studies with a focus on gender, violence, and labour in Southeast Asia and Europe. She holds a PhD from LSE, an MSc and BSc from University College London. Her research explores forced migrant removal experiences in Southeast Asia, carceral domesticities in Singapore's labour regime, and the legacy of forced migration in Cyprus. She co-leads an abolition domesticities project with Sneha Krishnan (University of Oxford) and has conducted ethnographic fieldwork across Southeast Asia for a decade. Her ESRC Postdoctoral Fellowship at Oxford supported this work. Key research areas: migration, domestic labour, gender violence, Southeast Asia Methodological innovations: drawing-based ethnography, spatial visualization Current projects: Singapore's migrant domestic workers, carceral geographies, Cypriot forced migration Publications appear in Transactions of the Institute of British Geographers, Annals of the American Association of Geographers, and Environment and Planning D. Awards include an ESRC Postdoctoral Research Fellowship (2018-2020). Teaching focuses on human geography theory and critical migration studies. Office in CKK 3.05, reachable via l.f.antona@lse.ac.uk.
Johan Sidén is a Lecturer and Associate Professor at Mid Sweden University , employed in the Department of Computer and Electrical Engineering (DET) . His work focuses on RFID technology , antenna design , and printed/flexible electronics , with a particular emphasis on industrial IoT and welfare technology applications. Research Keywords : Radio Frequency Identification, Antenna Design, Flexible Electronics, Wireless Sensor Networks, Microwave Engineering, Electronic Design Key Projects : DRIVEN (data-driven industrial transformation), SmartArea (functional surfaces), Pressure (ulcer monitoring), MakeSense! (welfare technology) Publications : 15+ recent works on wearable antennas, smart packaging, UWB antenna design, and RFID sensor integration Collaborations include partnerships with industrial and academic institutions, focusing on sustainable electronics, sensor systems, and smart infrastructure. His technical expertise spans antenna optimization , printed circuits , and edge computing for harsh environments.
Gaofeng Jia is Associate Professor in Civil and Environmental Engineering at Colorado State University's Walter Scott, Jr. College of Engineering. He specializes in natural hazard risk assessment, infrastructure resilience, and uncertainty quantification. Research integrates simulation-based approaches with high-performance computing for assessing complex engineering systems. Core areas include infrastructure deterioration modeling, wave energy converter optimization, tsunami evacuation planning, and surrogate modeling techniques. Recent work emphasizes physics-informed machine learning for engineering applications. Publications demonstrate consistent methodological innovation in uncertainty quantification across domains including seismic engineering, coastal hazards, renewable energy systems, and structural reliability. Articles employ advanced computational statistics, Bayesian methods, and multi-fidelity modeling. Young Researcher Best Paper Award Best Student Paper Award
Gokhan Pekcan is a Professor at the University of Nevada, Reno, serving as Graduate Program Director and Associate Chair for Graduate Affairs. His research focuses on earthquake engineering, structural dynamics, seismic hazard mitigation, and structural health monitoring. Key research areas include: Seismic response of bridges and buildings under torsional ground motions Development of active and adaptive control systems for seismic resilience Integration of machine learning and compressive sensing for structural health monitoring Experimental validation of seismic retrofit techniques Analysis of structural and nonstructural systems' vulnerability Design of energy dissipation systems for civil infrastructure Recent publications highlight his work on torsional ground motion effects, hybrid simulation methodologies, and smart material applications in bridge systems. He employs deep learning for damage detection and data compression in monitoring frameworks.
Özge Öner serves as Associate Professor in Spatial Economics and Real Estate at the University of Cambridge's Department of Land Economy and holds a Fellowship at Sidney Sussex College, where she additionally serves as Vice Master and Director of Studies. Her institutional affiliations extend to research fellowships at Stockholm's Institute of Retail Economics and Jönköping's Centre for Entrepreneurship and Spatial Economics (CEnSE). Her academic foundation includes a 2014 PhD in Economics with specialization in Urban and Regional Economics from Jönköping International Business School, complemented by doctoral research at the University of Illinois' Regional Economics Applications Laboratory (REAL). Prior academic appointments include Assistant Professor at Jönköping International Business School and Researcher at Stockholm's Research Institute of Industrial Economics (IFN). Research Interests: Öner's scholarly work critically examines migration dynamics, labor mobility patterns, micro-geographic segregation mechanisms, ethnic enclave formation, retail/service geography, urban amenity distribution, entrepreneurial geography, and political spatial organization. Her methodological approach heavily leverages geocoded register data and spatial econometric techniques to investigate how geographic context shapes economic behavior, with particular emphasis on Swedish and European urban systems. This interdisciplinary framework bridges spatial economics, economic geography, and migration studies through rigorous quantitative analysis of neighborhood-level phenomena. Publication Trends: Her recent output (2023-2025) demonstrates evolving focus toward infrastructure-impact analysis (tramway effects on commercial vitality), refugee labor market integration pathways, and micro-scale retail/ethnic enclave dynamics. Methodologically, she increasingly employs synthetic control approaches and granular geospatial data to isolate causal mechanisms in urban economic processes, while maintaining strong connections to policy-relevant questions about segregation, integration, and commercial geography. Scientific Awards: Handelsbanken Wallander postdoctoral scholarship (2015) Young Investigator Award in Italy (2018) Young Researcher Award in Sweden (2019) from the Swedish Entrepreneurship Forum Advising and Public Engagement: As Director of Studies at Sidney Sussex College, Öner oversees academic progression for undergraduate students. She actively translates research into public discourse through monthly columns in Svenska Dagbladet (The Swedish Daily News), where she analyzes contemporary socioeconomic issues through her spatial economics lens. While specific doctoral advisees aren't documented in source materials, her leadership roles indicate significant mentoring responsibilities. Research Networks: Öner maintains active collaboration through dual research fellowships: at Stockholm's Handelns Forskninginstitut (Institute of Retail Economics) where she examines commercial geography, and at Jönköping's CEnSE focusing on spatial entrepreneurship patterns. These positions facilitate cross-institutional research on retail dynamics, migration geography, and urban economic structures using Scandinavian longitudinal datasets.
Professor Kenneth T. V. Grattan serves as the Royal Academy of Engineering/George Daniels Professor of Scientific Instrumentation at the School of Engineering, City, University of London. He has held this prestigious position since October 1, 1983, demonstrating a long-standing commitment to advancing scientific instrumentation and sensor technologies. Professor Grattan's research spans multiple domains within optical sensing and instrumentation. His primary research interests include: Optical fibre sensors for various physical and chemical parameter measurements Laser-based sensing systems and photonics technologies Instrumentation design for industrial and biomedical applications Advanced signal processing techniques for sensor data interpretation Novel materials integration in sensor development His recent publication record demonstrates a strong focus on developing sophisticated optical sensor systems with practical applications. Professor Grattan's work shows consistent innovation in fiber Bragg grating technology, interferometric sensing approaches, and microfluidic integration. His research group has made significant contributions to dual-parameter sensing systems, environmental monitoring solutions, and biomedical sensing applications. The trend in his recent publications indicates increasing interdisciplinary collaboration, particularly with biomedical researchers and industrial partners to translate laboratory innovations into practical measurement systems. As the George Daniels Professor of Scientific Instrumentation, Professor Grattan holds one of the most prestigious named chairs in the field, supported by the Royal Academy of Engineering. This position recognizes his significant contributions to advancing measurement science and instrumentation technology. Professor Grattan has supervised numerous PhD students and research associates throughout his career, though specific names are not detailed in the available information. His research has been supported by various funding bodies and industrial partnerships, enabling the development of cutting-edge sensor technologies with real-world applications. His laboratory at City, University of London focuses on developing next-generation optical sensor systems, with particular emphasis on making measurements in challenging environments. The research group maintains strong connections with industry partners to ensure practical relevance of their developments.