Dr. Zhifu Mi is a Professor of Climate Change Economics at the Bartlett School of Sustainable Construction , University College London. His research focuses on carbon footprint analysis, climate change economics, air pollution and health, sharing economy sustainability, and input-output modeling. He has published extensively in top journals like Nature Sustainability , Lancet , and Science Advances . Co-Editor-in-Chief, Structural Change and Economic Dynamics (2020–present) Executive Editor, Journal of Cleaner Production (2019–present) President, Chinese Economic Association (UK/Europe) Council Member, International Input-Output Association Fellow of the Royal Geographical Society His research explores: Carbon Footprints: Economic development and emission convergence in Chinese households Climate-Health Linkages: Air pollution impacts, ultra-low emission policies Sharing Economy: Sustainable societies through shared micro-mobility Policy Analysis: Synergies between environmental regulations Recent publications analyze decarbonization employment gaps, polycentric urban structures, and health-environment policy intersections. Awards include the World Sustainability Award (2018), multiple Clarivate Highly Cited Researcher honors, and UCL's Outstanding Research Supervision Award (2022). He teaches modules on construction economics and input-output analysis.
Constantine (Costa) Samaras is the Trustee Professor of Civil and Environmental Engineering and Director of the Wilton E. Scott Institute for Energy Innovation at Carnegie Mellon University. He is also affiliated with the Department of Engineering and Public Policy and holds a courtesy appointment in the Heinz College of Information Systems and Public Policy. Director, Scott Institute for Energy Innovation Trustee Professor, Civil and Environmental Engineering Affiliated Faculty, Engineering and Public Policy Courtesy Faculty, Heinz College of Information Systems and Public Policy His research focuses on systems engineering approaches to climate resilience , clean energy transitions , and infrastructure security . Key areas include: Transportation electrification and automation Climate adaptation for infrastructure Energy policy under uncertainty AI impacts on energy systems Equity in decarbonization National security implications of energy Costa Samaras co-authored 15 recent studies spanning energy burden analysis, climate hazard indices, AI training energy optimization, and nature-based infrastructure solutions. His work emphasizes transdisciplinary collaboration between engineering, policy, and climate science. Notable scientific recognition includes being named Professor of the Year by the Pittsburgh Section of the American Society of Civil Engineers in 2018. He has led significant policy engagements including White House service (2021-2024) as Principal Assistant Director for Energy and Chief Advisor for Clean Energy Transition. Current affiliations include: Founder/Director, Center for Engineering and Resilience for Climate Adaptation Founder/Director, Power Sector Carbon Index Former Senior Researcher, RAND Corporation (2009-2014) Former Adjunct Senior Analyst, RAND Corporation (2014-2021)
Yueh-Lin (Lynn) Loo is the Theodora D. '78 and William H. Walton III '74 Professor in Engineering and Professor of Chemical and Biological Engineering at Princeton University. She holds affiliated roles in the Andlinger Center for Energy and the Environment, Department of Chemistry, Department of Electrical Engineering, Princeton Environmental Institute, and Princeton Materials Institute. Her research focuses on organic and polymer electronics, with emphasis on solution-processable materials, soft lithography, and interfacial engineering in solar cells. She has pioneered innovations in organic electronics fabrication and scalable energy technologies. Education: Ph.D. in Chemical Engineering from Princeton University (2001); BSE in Materials Science and Engineering and Chemical Engineering from the University of Pennsylvania (1996). Research Interests: - Solution-processable organic conductors for thin-film electronics - Soft lithography techniques for patterning plastic electronics - Self-assembled monolayers for optimizing organic solar cell interfaces - Development of cost-effective, large-area electronic device fabrication methods Her articles span organic semiconductor material design, device fabrication techniques, and energy applications. Awards include Fellowships from the National Academy of Engineering, American Institute of Chemical Engineers, and multiple industry recognitions for innovation in materials science and clean energy. Advises graduate students in chemical engineering and materials science. Leads the Organic and Polymer Electronics Laboratory, advancing research in decarbonization technologies and maritime energy solutions. Current projects include smart solar spectrum management systems and recyclable plastic electronics.
Ines M. L. Azevedo is a Professor in the Department of Energy Science and Engineering at Stanford University, with courtesy appointments in Civil and Environmental Engineering and Earth System Science. As a Senior Fellow at the Precourt Institute for Energy, her research bridges environmental, technical, economic, and policy dimensions of energy systems. Research Focus: Energy system transitions, air pollution impacts, climate change mitigation, and equity in electrification. Awards: C3E Women in Clean Energy Research Award (2017) Philip L. Dowd Fellowship (2017) World Economic Forum Young Scientists Under 40 (2014) Advising: Mentors doctoral and master's students in energy systems and environmental research. Recent Article Trends: Analyzes air quality in India, lifecycle impacts of battery recycling, and equity dimensions of transportation electrification.
Michael John Janik is a Professor in the Department of Chemical Engineering at Pennsylvania State University, with significant affiliation to the Institute of Energy and the Environment (IEE). His academic profile demonstrates exceptional research productivity with 270 research outputs, 25 funded projects, and substantial scholarly impact reflected in 17,238 citations and an h-index of 61. His research expertise centers on computational chemistry with particular focus on Density Functional Theory applications to catalysis and electrocatalysis. The fingerprint analysis of his work reveals strong concentrations in Density Functional Theory (76%), Oxidation Reactions (36%), Carbon Dioxide research (29%), Adsorption phenomena (27%), and First Principles Chemistry (22%). His work significantly contributes to UN Sustainable Development Goals related to clean energy and climate action. Analysis of his recent publications (2020-2025) reveals a strong research trajectory in electrocatalysis, particularly examining cation effects on CO 2 reduction mechanisms, intermetallic catalyst design, and computational modeling of electrochemical systems. His work bridges fundamental computational chemistry with practical applications in sustainable energy conversion. h-index of 61 17,238 total citations Multiple high-impact publications in journals including Nature Catalysis, Journal of the American Chemical Society, and Science Advances Professor Janik actively leads and collaborates on numerous research projects, particularly with Dr. Rioux and other colleagues, focusing on advanced catalyst development and electrochemical energy conversion systems. His current research portfolio includes multiple active NSF-funded projects extending through 2027 that address critical challenges in electrocatalysis, CO 2 reduction, and intermetallic catalyst design. His research group maintains strong connections with the Institute of Energy and the Environment, positioning his work at the intersection of fundamental computational chemistry and applied energy solutions. Current projects include combining DFT with classical simulations to predict solvation effects, developing high-entropy alloys for catalysis, and studying oxide overlayers in CO 2 reaction systems.
Laureate Professor Behdad Moghtaderi is a globally recognized chemical engineer at The University of Newcastle's School of Engineering. He leads research in clean energy technologies, including the GRANEX heat engine, greenhouse gas abatement, and chemical looping processes. His work addresses critical challenges in energy efficiency, renewable energy systems, and reducing fugitive methane emissions from coal mines. With over $48M in research funding and 220+ publications, he directs the Newcastle Institute for Energy and Resources (NIER) and holds leadership roles in national and international energy initiatives. Education: PhD (University of Sydney), MEng (University of Sydney), BSc (Shiraz University) Administrative Roles: Director of NIER, former Head of School of Engineering, and member of global energy advisory bodies Research interests span energy systems, combustion science, and sustainable technologies. Notable innovations include the VAMCO system for methane abatement and solar thermal GRANEX installations. Awards include the Carrick Teaching Citation and multiple engineering excellence recognitions. Scientific contributions include 14 PhD completions and over 20 funded projects. Current focus areas include hydrogen safety, carbon capture, and thermochemical energy storage. His labs (NIER) collaborate with industry partners like Siemens Energy and the Australian Hydrogen Council.
Yiguang Ju is the Robert Porter Patterson Professor of Mechanical and Aerospace Engineering at Princeton University, affiliated with the HMEI Grand Challenges Program. His research focuses on plasma-assisted combustion, alternative fuels, and nano-material synthesis via flame processes. He investigates energy-efficient systems for microscale energy conversion, catalytic reactions, and low-temperature plasma chemistry. Research interests include non-equilibrium plasma dynamics, ammonia synthesis, and high-pressure oxidation kinetics. He develops advanced diagnostics like hybrid laser spectroscopy and machine learning models to study reaction mechanisms. Recent work explores plasma-enhanced combustion for hydrogen and alternative fuels, with applications in energy storage and emission reduction. His studies address challenges in plasma-chemistry interactions, material synthesis, and high-pressure combustion systems. His articles highlight innovations in plasma catalysis, combustion kinetics, and atmospheric chemistry. Collaborative projects include plasma-based material recycling and supercritical-pressure reactor analysis. He leads initiatives in clean energy technologies and sustainable chemical processes.
Mohammadreza Karamad is an Assistant Professor in the School of Sustainable Energy Engineering at Simon Fraser University (SFU), with a joint appointment in the Sustainable Energy Engineering department. His research focuses on computational materials discovery, leveraging quantum-mechanical methods (e.g., DFT) and machine learning (ML) to design advanced energy materials for clean technologies like hydrogen storage and catalysis. He holds a Ph.D. from the Technical University of Denmark (DTU) and completed postdoctoral research at Stanford University. His academic background includes leadership roles in the CMD Lab (Computational Materials Discovery), where he explores novel materials for electrochemical energy conversion processes. Key research areas include electrochemistry, heterogeneous catalysis, and material science, with a particular emphasis on CO2 reduction, ammonia synthesis, and sustainable energy storage solutions. Dr. Karamad collaborates with industry and academic partners to advance materials discovery through high-throughput computational screening and AI-driven approaches. He actively seeks motivated students (undergraduate and graduate) to join his research program, focusing on developing next-generation energy materials. His lab is located in room B8220, and he can be reached at mkaramad@sfu.ca. Notable technical contributions include pioneering work on transition metal nitrides for CO2 reduction, single-atom catalysts for ammonia synthesis, and machine learning frameworks for predicting material properties. His research bridges fundamental theory with practical applications, addressing global challenges in sustainable energy and environmental technology.
Jesse D. Jenkins is an Associate Professor of Mechanical and Aerospace Engineering and the Andlinger Center for Energy and the Environment at Princeton University. His joint appointment bridges the School of Engineering and Applied Science and the Andlinger Center, focusing on macro-scale energy systems engineering. He holds a Ph.D. in Engineering Systems from MIT (2018) and completed a postdoctoral fellowship at Harvard Kennedy School. Research Interests: Energy systems modeling, deep decarbonization pathways, low-carbon technologies, and energy policy. He leads the Princeton ZERO Lab, which develops optimization-based models to evaluate clean energy transitions and inform policy. Key Awards: Howard B. Wentz Jr. Junior Faculty Award, Princeton Engineering Teaching Excellence Award, TIME100 Next (2024), and recognition in ENR's 2022 Top 25 Newsmakers for leadership in climate policy analysis. Professional Contributions: Serves on advisory boards for Eavor Technologies, Rondo Energy, and Dig Energy. Co-hosts the podcast Shift Key on energy transition strategies. Labs/Teams: Directs the ZERO Lab and co-leads the REPEAT Project, analyzing U.S. decarbonization pathways and federal policy impacts.
Dustin Tingley is a Professor of Government at Harvard University and holds a joint appointment at the Harvard Kennedy School of Public Policy . He serves as Interim Vice Provost for Advances in Learning and directs the Data Science and Technology Group and the Harvard Initiative on Learning and Teaching . He earned a PhD in Politics from Princeton and a BA in political science and math from the University of Rochester. Key Roles : Deputy Vice Provost (past), Chair of Harvard's Standing Committee on Climate Education Research Focus : Climate change politics, data science, causal inference, and international political economy His recent work explores the political economy of climate transitions , public opinion on carbon policies , and machine learning applications in social sciences . He co-founded ABLConnect , a repository for active learning pedagogy, and organized conferences on causal mechanisms , teaching with AI , and equitable classrooms . Awards : Gladys M. Kammerer Award (2015) for co-authored book Sailing the Water’s Edge Notable Publications : Uncertain Futures: How to Unlock the Climate Impasse (2023, with Alex Gazmararian) The Political Economy of the Clean Energy Transition (2025)
Professor Guoxiu Wang is a Distinguished Professor and Industry Laureate Fellow at the University of Technology Sydney (UTS), leading the Centre for Clean Energy Technology. His expertise spans battery technologies, materials chemistry, and electrochemistry, with a focus on lithium-ion, sodium-ion, and other advanced energy storage systems. He holds prestigious fellowships, including from the Royal Society of Chemistry and the European Academy of Sciences. His research has been recognized through numerous awards, including being listed as a Highly Cited Researcher since 2018. Research Interests: Professor Wang’s work addresses challenges in energy storage through innovative materials design, including electrode materials for sodium-ion and lithium-sulfur batteries, MXenes, and electrolyte development. His team explores strategies to enhance battery performance, such as heterostructure engineering and defect-rich catalysts. Publications & Impact: With over 750 refereed papers, including in Nature Energy , Advanced Materials , and Angewandte Chemie , his work has garnered >78,000 citations (H-index 153/165). Recent trends focus on sodium-ion battery materials, MXene-based capacitors, and sustainable energy solutions like osmotic energy harvesting. Awards & Leadership: Awards include Fellowships from the Royal Society of Chemistry (2017), International Society of Electrochemistry (2018), and European Academy of Sciences (2020). He serves as an Associate Editor for Energy Storage Materials and Electrochemical Energy Reviews , and leads international collaborations, including a Royal Society Wolfson Visiting Fellowship at the University of Manchester (2024–2026). Grants & Supervision: Secured significant external grants, with active supervision of PhD/Masters students in battery technologies. His labs prioritize sustainable energy solutions and advanced material synthesis. Labs & Teams: Directs the Centre for Clean Energy Technology, fostering interdisciplinary research to advance clean energy technologies, from novel battery designs to electrochemical catalysts for CO2 and nitrate conversion.
Bart Somers is an Associate Professor at Eindhoven University of Technology , affiliated with the Department of Mechanical Engineering . His primary affiliations include the Power & Flow Group and his own research group, Group Somers , alongside cross-cutting roles in EAISI (Eindhoven Artificial Intelligence Systems Institute) and EIRES (Eindhoven Research on Innovation and Sustainability in Energy Systems). He focuses on advancing combustion science , sustainable fuels , and engine efficiency , leveraging computational fluid dynamics (CFD) and experimental methods. His research interests span alternative fuels (hydrogen, bio-oils, biofuels), high-pressure spray combustion , and low-emission engine design . He investigates combustion optimization through CFD tools like large-eddy simulation (LES) and flamelet-generated manifolds (FGM), emphasizing fuel stratification , ignition dynamics , and emission control . His work bridges experimental diagnostics (e.g., spray visualization, OH* chemiluminescence) and numerical modeling. Academically, he teaches courses such as Thermodynamics , Clean Engines and Future Fuels , and Sustainable Vehicles , integrating practical projects into curricula. His educational activities emphasize interdisciplinary sustainability and innovation, including honors programs focused on professional development. Recent publications highlight his contributions to hydrogen injection strategies, biofuel applications in genset engines, and optimization of diesel-biofuel blends. His work aligns with global sustainability goals, addressing energy transition challenges through advanced combustion technologies.
Kareem Ahmed is a Professor in the Department of Mechanical and Aerospace Engineering at the University of Central Florida (UCF) and a faculty member of the Center for Advanced Turbomachinery and Energy Research. He leads research in advanced propulsion and energy systems, focusing on high-speed turbulent combustion, detonations, and hypersonic technologies. His work includes groundbreaking projects in detonation-based propulsion for hypersonic flight and power generation, supported by over $17 million in grants from NASA, AFOSR, and DOE. Education: Ph.D. and M.S. in Mechanical Engineering, University at Buffalo (SUNY) B.S. in Mechanical Engineering, New York State College of Ceramics at Alfred University Research Interests: Ahmed’s expertise spans detonation dynamics, supersonic reacting flows, flow-flame control, and advanced laser diagnostics . His team explores innovations like rotating detonation engines (RDEs) and scramjet combustion systems, with applications in aerospace defense and space exploration. Awards and Recognition: AIAA Associate Fellow American Chemical Society Doctoral New Investigator Award AFOSR Summer Faculty Fellowship UCF Trustee Chair (2025–2030) Grants & Advising: PI of over $17M in research funding; mentors 145+ doctoral, master’s, and undergraduate students. Collaborates with industry leaders like GE, Aerojet Rocketdyne, and Pratt & Whitney. Labs & Teams: Director of UCF’s Center of Excellence in Hypersonic and Space Propulsion, advancing technologies for 15-minute transcontinental flight and clean rocket fuels.
Dist. Professor Leslie Yeo is a distinguished faculty member at RMIT University's School of Engineering, where he leads the Micro/Nanophysics Research Laboratory (MNRL). With a PhD from Imperial College London (2002), he has held positions at Monash University and the University of Notre Dame before joining RMIT. His research focuses on the interactions between high-frequency sound waves and matter at micro and nanoscales. Leslie Yeo's educational background includes a PhD from Imperial College London (2002), where he received the Dudley Newitt prize for outstanding computational/theoretical work. Prior to his academic career, he worked as a Mathematical Modeller at Det Norske Veritas UK. He held prestigious Australian Research Fellowships (2009-2017) that supported his groundbreaking work in micro and nanophysics. Professor Yeo's research interests center around high-frequency (MHz order) sound waves interacting with various materials including fluids, two-dimensional and bulk crystals, biomolecules, cells and microorganisms. His work explores both fundamental physicochemical phenomena and practical applications in microfluidics, drug delivery, diagnostics, tissue engineering, and materials synthesis. His research has significant implications for health technologies, environmental applications, and sustainable energy solutions, aligning with UN Sustainable Development Goals 3 (Good Health and Well-Being) and 7 (Affordable and Clean Energy). Analysis of Professor Yeo's recent publications reveals a strong focus on acoustofluidics and its diverse applications. His work demonstrates expertise in using surface acoustic waves for bacterial inactivation, synthesis of metal-organic frameworks, cell membrane manipulation, and energy conversion technologies. The research spans multiple disciplines including biomedical engineering, materials science, and environmental technology, with particular emphasis on practical applications that address real-world challenges. 2023: Fellowship of the Institution of Engineering & Technology (FIET) 2021: RMIT University Science, Technology, Engineering & Medicine College Research Impact Award 2019: RMIT University Distinguished Professorship 2018: RMIT University Vice-Chancellor's Award for Research Excellence 2016: Johnson & Johnson World Without Disease Quickfire Challenge Award 2007: Young Tall Poppy Science Award Professor Yeo has supervised numerous research students across engineering and science disciplines, with current projects focusing on acoustomicrofluidic synthesis of nanomaterials, high-frequency mechanobiology applications, and diagnostic technologies. His editorial roles include Editor-in-Chief of the American Institute of Physics journal Biomicrofluidics and Associate Editor of Frontiers in Bioengineering & Biotechnology. His work has been widely featured in media outlets including ABC's Catalyst, The Economist, and Nature. The Micro/Nanophysics Research Laboratory under Professor Yeo's leadership is at the forefront of fundamental and applied research on nonlinear high-frequency electroacoustic interactions. The laboratory has discovered novel physicochemical phenomena and actively develops theories to explain the fundamental mechanisms behind these discoveries, with applications ranging from medical diagnostics to sustainable energy solutions.
David Chester Upham is an Assistant Professor in the Department of Chemical & Biological Engineering within the Faculty of Applied Science at the University of British Columbia (UBC). He leads the Upham Lab, which focuses on developing catalysts and processes for sustainable energy production, greenhouse gas mitigation, and CO 2 -free chemical conversion. Dr. Upham received his education from prestigious institutions: Postdoctoral Scholar, Stanford University (2019) Ph.D., University of California Santa Barbara (2017) B.Eng., McGill University (2010) Dr. Upham's research focuses on heterogeneous catalysis for sustainable energy applications. His work centers on developing catalysts and processes that enable CO 2 -free production of chemicals, power, and materials. He specializes in liquid heterogeneous catalysts , particularly molten metal alloys, for methane conversion, CO 2 utilization, and hydrogen production. His lab employs advanced techniques including operando IR spectroscopy, pulsed and transient analysis of reaction mechanisms, isotopic labeling studies, and in-situ X-ray absorption spectroscopy. A key aspect of his research is understanding how liquid heterogeneous catalysts behave under reaction conditions, with applications in methane pyrolysis, dry reforming, and carbon fiber synthesis. Analysis of Dr. Upham's recent publications reveals a strong focus on CO 2 mitigation and clean energy production . His work spans multiple domains including methane conversion technologies, CO 2 -to-fuels processes, and carbon-negative fuel production. A significant portion of his research investigates molten metal catalysts for methane pyrolysis and dry reforming, with applications in hydrogen production and carbon capture. His publications demonstrate an interdisciplinary approach combining chemical engineering, materials science, and environmental engineering to address climate change challenges through innovative catalytic processes. Dr. Upham actively mentors a diverse group of graduate students and researchers. His lab currently includes multiple PhD and MASc students working on various aspects of catalysis and clean energy: PhD Students: Mark Tabbara, Genpei Cai, Natascha Miederhoff MASc Students: Michael Byun, Sawyer d'Entremont, Rami Jubeili, Wyatt Schnare Postdoctoral researcher: Sonit Balyan Multiple undergraduate and visiting students from institutions worldwide The Upham Lab operates within UBC's Catalysis Labs, utilizing advanced experimental techniques to study reaction mechanisms and develop new catalysts. The lab's research has significant implications for decarbonizing the energy and chemical sectors, with potential applications in hydrogen production, carbon fiber manufacturing, and CO 2 -to-fuels technologies.