Dr. Jurgen Becque is an Associate Professor in Structural Engineering at the University of Cambridge's Department of Engineering. He specializes in cold-formed steel structures, stainless steel structural behavior, and stability analysis, with a focus on local-overall buckling interaction and innovative design methodologies. His work bridges experimental investigations with computational modeling and machine learning applications. Research Interests: Cold-formed steel structural systems Stainless steel column stability Local and overall buckling interaction Mechanics-based design optimization Machine learning for structural behavior prediction Recent publications demonstrate expertise in cross-sectional stability, connection mechanics, and composite systems like UHPC-confined stainless steel columns. His work addresses both monotonic and cyclic loading scenarios, contributing to Eurocode 3 design standards.
Magda Posani is an Assistant Professor in the Department of Civil Engineering at Aalto University, focusing on building physics, hygrothermal behavior of materials, and environmental sustainability. Her research explores the use of bio-based insulation, thermally massive stone and earth walls, and additive manufacturing techniques to enhance indoor comfort and address climate change challenges in Nordic regions. Integrated Master's Degree in 'Building Engineering and Architecture' from the University of Bologna (Italy) Ph.D. in Civil Engineering from the National Laboratory for Civil Engineering (LNEC) and the University of Porto (FEUP, Portugal) Postdoctoral Research at ETH Zürich (Switzerland) Her research integrates vernacular solutions with modern technology, such as combining additive manufacturing with super-hygroscopic materials to develop components for passive humidity regulation. She addresses critical issues like occupant comfort, health risks from improper humidity, and climate change impacts on traditional constructions. The articles highlight her work on low-carbon materials, 3D-printed building components, and strategies for enhancing hygrothermal performance in both modern and historic structures. Key themes include moisture buffering, thermal insulation compatibility, and climate-resilient renovation.
Marcos Cruz is Professor of Innovative Environments at The Bartlett School of Architecture, University College London (UCL), where he leads research in bio-integrated design. He runs Bio-ID with Dr. Brenda Parker, a multidisciplinary research platform investigating design driven by biotechnology, computation, materials, and fabrication. Previously, he served as Director of The Bartlett from 2010-2014 and founded the BiotA Lab (2014-2018). His academic career spans multiple institutions including University College London (where he ran MArch Unit 20 for 19 years), University of Westminster (2008-2010), UCLA (2010), and IAAC (2014-present). Professor Cruz holds a Licenciatura from ESAP Porto, a Masters with distinction from UCL, and a PhD from UCL (2007), sponsored by the Portuguese Foundation for Science and Technology. His doctoral research on 'Neoplasmatic Architecture' earned him the RIBA President's Research Award in 2008. He is a registered architect with both the Architects Registration Board (ARB) and the Portuguese Architecture Chamber. His primary research area is Bio-Integrated Design, which explores how biotechnology and computation can reshape our built environment in response to climate change. This work goes beyond using nature as inspiration; instead, it treats nature as the medium for a multi-layered design approach. His key research project, Poikilohydric Living Walls, investigates integrating growth systems directly on building facades using algae and mosses that can switch photosynthetic activity on and off without additional maintenance. Another significant research area is The Body in Architecture, which examines the relationship between human flesh and architectural flesh, proposing a 'thick embodied flesh' that creates truly inhabitable architectural interfaces. His recent publications demonstrate a strong progression toward integrating living systems directly into building materials and facades. The research spans from microbial to tectonic scales, with increasing focus on biomaterials, robotic fabrication, and sustainable design approaches that actively participate in urban ecosystems rather than merely responding to them. RIBA President's Research Award (2008) for 'Neoplasmatic Architecture' Multiple Best Unit awards at Bartlett Summer Show (awarded by Thom Mayne, Paul Finch, Richard Rogers, Claude Parent, and Ross Lovegrove) Work part of permanent collection at FRAC Orleans Exhibitions at Venice and São Paulo Biennales Professor Cruz has supervised numerous PhD students through UCL's Research-by-Design programme and currently directs the MArch/MSc in Bio-Integrated Design. His research has been supported by EPSRC and involves industrial partners including Laing O'Rourke, Pennine Stone Limited, and Amorim, with academic partners at UCL Biochemical Engineering, University of Coimbra, and IST Tomar. He co-founded MAM-ARCH London (formerly marcosandmarjan) in 2000, whose work has built buildings and pavilions, won international competitions including the Kunsthaus Graz, and been exhibited globally. His practice represents a significant bridge between architectural design and biological systems, positioning him at the forefront of bio-integrated architectural research.
Moncef Krarti is a Professor in the Department of Architectural Engineering at the University of Colorado Boulder, within the College of Engineering and Applied Science. His professional affiliations include roles as a Professional Engineer (PE) and LEED-AP. Krarti holds a Ph.D. (1987), M.Sc. (1985), and two Diplôme d'Ingénieur degrees (France, 1984/1982). His research focuses on evaluating energy efficiency technologies, optimizing building designs, and analyzing renewable energy systems. Key interests include HVAC controls, building retrofit strategies, and multi-benefit energy programs. Krarti has authored influential textbooks like Energy Audit for Building Systems and Energy Efficient Building Electrical Systems . Recent articles emphasize smart glazing systems, dynamic insulation, and geothermal heat pumps. His work addresses global challenges like urban heat islands and net-zero communities. Krarti has received prestigious awards including ASME Fellow (2015) and a 2023 Fulbright U.S. Scholarship. His research spans residential and commercial sectors, with case studies in Saudi Arabia, France, and the U.S.
Buyung Kosasih is a Professor in the School of Mechanical, Materials, Mechatronic and Biomedical Engineering at the University of Wollongong. He has held this position since 2000 and focuses on teaching and research in mechanical engineering, including Machine Dynamics, Finite Element Methods, and Renewable Energy Technology. His research spans fluid dynamics in industrial processes, renewable energy systems, and aqueous lubrication. Key projects include 3D-printed surfboard fin optimization and steel coating dynamics. Research interests emphasize experimental and computational fluid dynamics, particularly in renewable energy turbines and tribological systems. Notable awards include the 2013 Outstanding Contribution to Teaching and Learning Award. He has supervised numerous students and led over 20 funded projects, including ARC grants for steel innovation and renewable energy. Collaborative work includes the Steel Research Hub and HVAC/cool roof efficiency studies.
Dr. Stella Boess is a Researcher at the Department of Industrial Design Engineering, Faculty of Industrial Design Engineering at Delft University of Technology. She focuses on interdisciplinary research bridging social sciences and engineering, particularly in sustainable renovation, accessibility, and health technology. Her work emphasizes user-centered design in residential environments, addressing challenges such as heat pump adoption and inclusivity for visually impaired individuals. She teaches courses like Inclusive Design and Prototyping for Interaction , and has collaborated on projects including the HiPP initiative for optimized patient experiences and the NWO usability project. She appeared in media such as NPO's Programme Reference Man in 2022. Her research interests include human-technology relations, sustainable building practices, and co-creation methodologies. She explores how design interventions impact occupant behavior and satisfaction, advocating for holistic approaches to integrate technology with human practices. Recent projects also address mobility design improvements for automotive interiors and inclusive medical solutions for the Global South. Research Projects: HiPP: Optimizing orthopedic patient care pathways NWO design for usability project REIL project: Enhancing rehabilitation interactions AAL project MyGuardian: Supporting aging populations Stella’s publications from 2022 to 2025 reflect a trend toward analyzing socio-technical dynamics in sustainable housing and mobility systems. She highlights the importance of stakeholder collaboration and participatory frameworks to ensure equitable outcomes. No scientific awards are listed, but her contributions to inclusive design and zero-energy renovation are notable.
Dr. Ralph Evins is an Associate Professor and Director of the Graduate Program in the Department of Civil Engineering at the University of Victoria. He holds affiliations with the Urban Energy Systems laboratory at Empa and ETH Zurich in Switzerland. His expertise spans building energy simulation, energy system optimization, and machine intelligence applications in sustainable design. Evins holds an MEng from Imperial College London and an EngD from the University of Bristol. His research focuses on computational problem-solving in energy systems, including surrogate modeling, optimization algorithms, and machine learning. He develops tools like the Holistic Urban Energy Simulation (HUES) platform and BESOS software framework to bridge building, district, and city-scale energy analysis. His work emphasizes holistic systems thinking, integrating energy hubs, thermal modeling, and digital twin technologies. Recent articles explore surrogate model refinement, inverse modeling for building characterization, and decarbonization strategies. He collaborates with industry to translate academic innovations into practical solutions. Evins advises students in energy systems and leads projects on net-zero building design, retrofit prioritization, and smart grid integration. His research addresses challenges in climate adaptation, energy efficiency, and sustainable urban development through interdisciplinary approaches.
Ben Amor is a Full Professor in the Department of Civil Engineering at the Faculty of Engineering, Université de Sherbrooke, where he serves as Director and Founder of the CIRMIB (Integrated Research Center on Sustainable Materials, Infrastructure and Buildings) and Director of Sustainable Development for the Faculty of Engineering. Previously, he held associate professor positions at Université Laval and Université de Sherbrooke. His research focuses on Life Cycle Assessment (LCA) methodologies applied to sustainable construction, circular economy implementation in building sectors, and building decarbonization strategies. He has pioneered regionalized LCA approaches for Arctic regions and developed frameworks for carbon budgeting in building sectors. His work bridges environmental science with practical engineering solutions for sustainable infrastructure. His recent publications reveal strong trends in building decarbonization pathways, material circularity in construction, and the integration of biogenic carbon accounting. He emphasizes both technological solutions and behavioral change strategies for achieving net-zero emissions in the built environment. ACLCA 2018 Life Cycle Assessment Leadership Award Life Cycle Academy Awards 2019 (two awards) Quebec Public Administration Excellence Prize 2023 for Scientific Collaboration Multiple university teaching awards including the Jacques-Bazinet Merit Award Professor Amor leads significant research grants totaling over $20 million, including NSERC Alliance grants for sustainable building materials and a $2 million Research Chair on Net Zero Strategies and Life Cycle Assessment. He directs the CIRMIB research center and the LIRIDE (Interdisciplinary Research Laboratory in Sustainable Engineering and Eco-design), supervising multiple doctoral candidates. His work includes developing LCA tools for Quebec's construction industry and advising government bodies on sustainable procurement policies.
Associate Professor Paola Leardini holds dual roles as Director (Research) and Associate Professor at the University of Queensland's School of Architecture, Design and Planning, within the Faculty of Engineering, Architecture and Information Technology. Her work bridges design and performance in built environments, focusing on net-zero targets, urban resilience, and circular economy strategies in construction. She is a key researcher in the Centre for Future Building Structures and advises on Queensland’s social/affordable housing through the Design Excellence Panel. Leardini earned a PhD in building energy efficiency and environmental quality from Politecnico di Milano, supervised by Prof. P. Ole Fanger. Her educational journey includes studies in Milan, Berlin, Leicester, and Copenhagen. Research highlights include eco-retrofitting of historical districts (e.g., Milan’s Quartiere Mazzini), Passive House adaptations for subtropical climates, and timber construction innovations with the ARC Advance Timber Hub. She co-founded Passive House Institute New Zealand (PHINZ) and collaborates globally on projects like water-sensitive cities and flood-resilient urban design. Her recent publications emphasize timber’s role in sustainable construction, circular economy frameworks, and climate-responsive building systems. Advising includes leading an ARC Linkage project on adaptable housing while fostering industry partnerships through projects like Norman Creek Catchment flood resilience studies. She actively contributes to labs/teams advancing timber use and urban resilience, aligning with UQ's mission for future-ready built environments.
Dr. Paul G. O'Brien is an Associate Professor in the Department of Mechanical Engineering at York University, Canada, affiliated with the Lassonde School of Engineering. His research focuses on interdisciplinary clean energy solutions, including energy storage, thermophotovoltaic systems, decarbonization of buildings, and life cycle assessments. He leads the Advanced Materials for Sustainable Energy Technologies (AM-SET-Lab) and has authored over 50 journal articles. His work spans materials science, photonic crystal engineering, and radiative cooling technologies. Research interests include optimizing thermal energy storage systems, photonic crystal-based filters for solar applications, and CO2 capture via direct air capture systems. His lab develops materials for passive cooling, solar-thermal integration, and advanced photocatalytic CO2 reduction. Dr. O’Brien collaborates across engineering disciplines to address global energy challenges. Recent publications highlight innovations in ellipsoidal optical cavities for thermophotovoltaics, radiative cooling materials, and techno-economic assessments of carbon capture technologies. His work bridges fundamental material science with applied engineering solutions for sustainable energy systems.
Patrick Phelan is a Professor and Associate Dean of Graduate Programs at the Ira A. Fulton Schools of Engineering, Arizona State University (ASU). He holds additional roles as a Senior Global Futures Scientist and Editor-in-Chief of Frontiers in Energy Efficiency . His research focuses on sustainable energy systems, thermal management, and energy efficiency, with notable contributions to solar energy, thermal transport processes, and industrial cooling technologies. Phelan has extensive administrative experience, including managing the U.S. Department of Energy’s Emerging Technologies Program and the National Science Foundation’s Thermal Transport Processes Program. Education: Postdoctoral Fellow, Tokyo Institute of Technology (1990–1992) Ph.D., Mechanical Engineering, University of California, Berkeley (1990) M.S., Mechanical Engineering, Massachusetts Institute of Technology (1987) B.S., Mechanical Engineering, Tulane University (1985) Research Interests: Thermal engineering and heat transfer Sustainable energy systems and cooling Energy efficiency in buildings and industry Thermogalvanic systems and advanced materials Decarbonization and community benefit strategies Professional Associations: Fellow, American Society of Mechanical Engineers (ASME) Member, American Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE) Current Activities: Leading the ASU Energy Efficiency Center Contributing to the Energy for Rural Arizona initiative Advancing agricultural cold chain efficiency Teaching courses on heat transfer and energy systems (e.g., MAE 589, MAE 576)
John Bell is a Professor and Deputy Vice-Chancellor (Research and Innovation) at the University of Southern Queensland (UniSQ), based at the Springfield Campus. He holds a BSc from the University of Sydney and a PhD from the University of New South Wales (UNSW). His leadership role involves overseeing research strategy and innovation initiatives across the institution. Bell's research spans advanced materials and energy technologies, with expertise in: Nanomaterials synthesis and characterization Renewable energy generation/storage (photovoltaics, batteries) Functional polymers and composite materials Semiconductor device engineering Smart building technologies His recent publications (2022-2025) demonstrate a strong focus on sustainable energy solutions, particularly next-generation batteries, solar cells, electrochromic devices, and nanotechnology-enabled sensors. Over 80% of his recent work addresses materials innovation for decarbonization and energy efficiency.
Roel C.G.M. Loonen is an Associate Professor at the Unit Building Physics and Services within the Department of the Built Environment at Eindhoven University of Technology (TU/e), Netherlands. He holds joint appointments with EAISI High Tech Systems and EIRES Research groups, focusing on building performance simulation and energy systems. His work bridges academic research with practical applications through collaborations with SMEs in the building industry. Loonen received his BSc and MSc (cum laude) in Building Services from Eindhoven University of Technology, followed by a PhD in 2018 with a dissertation on 'Approaches for computational performance optimization of innovative adaptive facade concepts.' His educational background has positioned him as a leading expert in building performance simulation and sustainable building technologies. His research interests center on developing and applying modeling and simulation strategies to support decision-making for designing buildings that combine high indoor quality with minimal environmental impact. Key areas include adaptive facades, building-integrated renewable energy systems, and energy-efficient building envelopes. He specializes in creating and validating new building performance simulation models to advance innovative building technologies. His recent publications demonstrate a strong focus on practical applications of building performance simulation, with emphasis on residential energy efficiency, photovoltaic systems, and occupant-centered approaches to building design. The work shows increasing integration of machine learning techniques with traditional building simulation methods, particularly for sensitivity analysis and optimization of building performance. REHVA Young Scientist Award (2021) Best PhD supervisor award from Department of the Built Environment, TU/e (2018) First prize - REHVA International student competition (2011) Smart daylight control for optimal building performance (NWO Take-off award, 2018) Best paper award (2021) Loonen actively supervises PhD and Master's students, evidenced by his Best PhD Supervisor Award in 2018. He manages multiple research projects including Sustainable Summer Comfort (2024-2027), Modeling Innovative Use Scenarios for Future Domestic Comfort (2023-2026), and Just Prepare (2022-2026), with funding from sources including the Dutch Research Council (NWO). His professional service includes being a board member of the Dutch-Flemish IBPSA affiliate and co-chair of IBPSA World's website committee, plus reviewing for 35 academic journals. He leads research within the Building Performance group, focusing on creating practical tools and methodologies that bridge the gap between theoretical building performance models and real-world implementation in the construction industry. His work particularly emphasizes the integration of occupant behavior and practices into building performance models, recognizing that human factors are critical to achieving sustainable building performance in practice.
Eric Masanet is a Professor and Mellichamp Chair in Sustainability Science for Emerging Technologies at the University of California, Santa Barbara (UCSB), holding a courtesy appointment in the Department of Mechanical Engineering. He leads the Bren School's Industrial Sustainability Analysis Laboratory, focusing on decarbonizing industrial and IT sectors while advancing equity and sustainability. His research spans energy system analysis, climate mitigation, and sustainable manufacturing. Education: Ph.D. in Mechanical Engineering from UC Berkeley, with M.S. and B.S. degrees from Northwestern University and the University of Wisconsin-Madison, respectively. Research interests include data center sustainability, industrial decarbonization, and the intersection of technology and climate policy. He has contributed to the IPCC's Sixth Assessment Report, advised the U.S. White House, and serves on the DOE's Industrial Technology Innovation Advisory Committee. Notable achievements include authoring the U.S. Data Center Energy Usage Report and leading the Resources, Conservation, and Recycling journal as former Editor-in-Chief. His work bridges academia with policy, influencing international energy and climate strategies. Advising and grants: Supervises PhD students (e.g., Jaxon Stuhr) and postdocs (Antoine Merlo, Jason Ye) in decarbonization research. Collaborates with Lawrence Berkeley National Laboratory and international organizations like the IEA. Labs/Teams: Directs the Industrial Sustainability Analysis Laboratory, advancing models for low-carbon industrial and IT systems.
Hua Ge is a Professor in the Department of Building, Civil and Environmental Engineering at Concordia University's Faculty of Engineering and Computer Science. She holds a Tier II Concordia University Research Chair in High Performance Building Envelope for Climate Resilient Buildings and leads extensive research in building science and climate adaptation. Her research focuses on wind-driven rain analysis , hygrothermal performance of building envelopes , advanced building facades , innovative wood-frame construction , and low-energy buildings . Current work examines climate change impacts on wind-driven rain loads, urban micro-climate effects, climate-resilient building envelopes, dynamic facades, and low-carbon healthy buildings. Her methodology combines large-scale laboratory testing, field monitoring, and computational modeling. Her 15 most recent publications demonstrate strong trends in nature-based climate resilience solutions , overheating risk mitigation in educational buildings , advanced hygrothermal modeling of wood-frame systems , and carbon sequestration strategies for buildings. The work spans multiple sub-disciplines including computational fluid dynamics, life cycle assessment, stochastic modeling, and field validation studies across Canadian climates. Tier II Concordia University Research Chair (CURC) in High Performance Building Envelope for Climate Resilient Buildings Professional Engineers of Ontario American Society of Heating, Refrigerating and Air-conditioning Engineers ASHRAE TC4.4 Building materials and building envelope performance (Subcommittee Chair) Professor Ge has supervised 42 graduate students (26 PhD, 16 MASc), including current advisees working on nature-based solutions, climate-resilient envelopes, and building integrated photovoltaics. Her research is supported by Concordia University Research Chair funding and collaborative projects with institutions like BCIT. She directs activities at Concordia's Building Envelope Test Facility and contributes to national standards through ASHRAE.