Jenny Y. Yang is a Professor in the Department of Chemistry at the University of California, Irvine. Her research focuses on the development of inorganic electrocatalysts for chemical fuel generation and utilization, emphasizing bio-inspired secondary coordination sphere effects and thermochemical property optimization. Institution: University of California, Irvine Department: Chemistry Research Interests: Oxygen activation mechanisms Hydrogen production and oxidation Carbon dioxide reduction for fuel synthesis Thermochemical property effects on catalysis Secondary coordination sphere engineering Electrochemical carbon capture systems Scientific Trends: Recent work spans from 2023–2025, covering CO2-to-methane conversion, quantum dot hybrid systems for hydrogen evolution, and computational approaches to CO2 capture agent design. Articles highlight interdisciplinary methods combining inorganic chemistry, electrochemistry, and sustainability-focused engineering. Contact: Office: 4080 ISEB | Phone: 949-824-1533 | Email: j.yang@uci.edu
Matthew Green is a tenured Professor in the Department of Chemical Engineering at Arizona State University , where he has been since 2014. He serves as Director of the Center for Negative Carbon Emissions and Associate Director of the Biodesign Center for Sustainable Macromolecular Materials and Manufacturing . Director, Center for Negative Carbon Emissions Associate Director, Biodesign Center for Sustainable Macromolecular Materials and Manufacturing Research Focus : Design of ion-containing polymers for water purification , CO2 capture , and nanocomposites , with emphasis on electrostatic interactions, microstructure control, and stimuli-responsive materials. Key thrusts include membrane technology , epoxy thermosets , nanoparticle templating , and electrospun fibers . Publication Trends : Recent work spans zwitterionic polymers for anti-scaling membranes, phosphonium-based DAC systems , silica nanocomposites , and biomaterials for immunotherapy , reflecting interdisciplinary expertise in polymer chemistry , environmental engineering , and materials science . Awards & Grants : 2019 NSF CAREER Award 2018 NASA Early Career Faculty Award 2022 Sloan Foundation Grant DOE DAC Pre-Commercial Technology Prize (2023) Multiple DURIP grants Email : mdgreen8@asu.edu
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.
T. Alan Hatton is a distinguished Professor in the Department of Chemical Engineering within the School of Engineering at the Massachusetts Institute of Technology (MIT). His career spans over four decades with significant contributions to electrochemical separation processes and sustainable engineering solutions. Current research focuses on developing next-generation electrochemical systems for critical environmental challenges. Education: Ph.D., University of Wisconsin, 1981 M.Sc. Eng, University of Natal, Durban, South Africa, 1976 B.Sc. Eng, University of Natal, Durban, South Africa, 1972 Professor Hatton's research centers on electrochemically-mediated separation processes , specifically targeting carbon capture from diverse sources (post-combustion flue gas, ambient air, and ocean water) and advanced water purification systems. His work integrates fundamental transport phenomena with innovative electrochemical engineering to create energy-efficient solutions. Key methodologies include redox-active materials, electro-swing adsorption, and molten salt electrochemistry, with strong emphasis on scalability and real-world implementation. Recent breakthroughs involve oxygen-stable quinone systems for direct air capture and marine carbon dioxide removal technologies. Analysis of his 15 most recent publications (2024-2025) reveals a concentrated focus on electrochemical CO 2 capture and conversion , with 87% of works directly addressing carbon management. Dominant themes include redox-active material design (particularly quinones and iron complexes), process thermodynamics optimization, and novel reactor architectures like fiber sorbents and photoelectrochemical systems. The research demonstrates consistent progression toward practical implementation, with increasing attention to marine carbon removal and integration with renewable energy sources. Scientific Awards: Founding Fellow, AIMBE, 1992 Merck Faculty Development Award, 1989 Class of '22 Career Development Chair, 1988 Presidential Young Investigator Award, NSF, 1985 Everett Moore Baker Award for Excellence in UG Teaching, MIT, 1983 Professor Hatton leads an active research group developing electrochemical separation technologies with significant industry and environmental impact. His laboratory operates at the intersection of fundamental electrochemistry and applied environmental engineering, securing sustained funding for projects targeting carbon capture scalability and water purification innovation. Current efforts focus on translating electro-swing adsorption technology to commercial applications through startup ventures, while maintaining strong educational contributions through MIT's chemical engineering curriculum. The research team maintains collaborations with national laboratories and industry partners to accelerate technology deployment.
Wenjing Zhang is a Professor and Head of the Section for Water Technology and Processes at the Department of Environmental and Resource Engineering, Technical University of Denmark (DTU). She is also affiliated with the DTU Microbes Initiative, contributing to interdisciplinary research in sustainable water technologies and environmental nanomaterials. Professor, DTU Head of Section, Water Technology & Processes Member, DTU Microbes Initiative Her research spans nanofiber technology, electrospinning, membrane processes, and catalytic materials for environmental applications. She focuses on innovative solutions for water purification, plastic waste recycling, CO2 photoreduction, and green hydrogen production, aligning with UN Sustainable Development Goals. The recent publications highlight a strong trend in advanced materials for environmental sustainability, particularly electrospun nanofibers, heterojunction photocatalysts, and ceramic membranes. These works emphasize applications in microplastic degradation, solid oxide cells, and chemical recycling of plastics, reflecting a multidisciplinary approach combining materials science, electrochemistry, and environmental engineering. Researcher at DTU Energy becomes honorary professor in China Wenjing Zhang actively supervises PhD students and leads multiple research projects, including EU and nationally funded initiatives on decentralized wastewater treatment and biocatalytic membrane systems. She collaborates with leading researchers and institutions, securing funding for high-impact environmental technologies. Her lab focuses on nanostructured membrane design and advanced fabrication of porous ceramics for industrial and municipal applications.
Dr Xiaolin Wang is an Associate Professor at the Australian National University's School of Engineering. She leads a research group focused on carbon capture, hydrogen storage, thermal energy storage using phase change materials, gas hydrate sciences, and green building technologies. Her work emphasizes sustainable energy solutions and environmental engineering. She has secured over $2M in research funding, including an ARENA-funded hydrogen storage project. Education: PhD from ANU (2013), joined ANU as an education-focused lecturer in 2018. Awards: ANU Vice Chancellor’s Award for Early Career Academics, AIRAH Excellence in HVAC&R Research, and CECC Remote Teaching Award. She serves as Sub-Dean of Student Experience in her college. Research Interests: Innovations in low-capital-cost hydrogen storage via nano-scaffolding, heat/mass transfer enhancement in hydrate-based CCS, novel PCM recipes for thermal management, and strategies for green building design. Her lab explores biomimetic encapsulation for CO₂ capture and eco-friendly hydrogels for methane hydrate formation. Publications focus on hydrate-based carbon capture mechanisms, thermal energy storage systems, and advanced materials. Key projects include mass transfer enhancement for hydrate CCS and a Global Research Partnership on building physics and acoustics. Grants & Funding: ARENA hydrogen storage project, ARC DECRA Fellowship, and ANU Global Research Partnerships Scheme. Supervises research on carbon capture, thermal systems, and sustainable materials.
Christoph Müller is a Full Professor of Energy Science and Engineering at ETH Zürich's Department of Mechanical and Process Engineering. He leads the Laboratory of Energy Science and Engineering, focusing on sustainable energy generation, heterogeneous catalysis, and granular systems. His research integrates experimental methods like Magnetic Resonance Imaging (MRI) and Discrete Element Modelling (DEM) with mathematical modeling to address industrial energy challenges. Education: Dipl.-Ing. from Technical University of Munich (2004), PhD in Chemical Engineering from the University of Cambridge (2008). Notable awards include the Danckwerts-Pergamon Prize (2009) and DAAD Scholarship (2005). He teaches courses such as Thermodynamics I and Thermo- and Fluid Dynamics. Research interests span CO₂ capture via chemical looping, catalytic hydrogenation, and granular flow dynamics. Recent work explores catalyst design for propane dehydrogenation, MXene-based ammonia synthesis, and MgO-based CO₂ sorbents. His lab employs advanced techniques like operando X-ray absorption spectroscopy to study catalyst behavior under reaction conditions. Key achievements include developing stable PtGa propane dehydrogenation catalysts and advancing understanding of Na₂CO₃-promoted CO₂ sorbents. His work on fluidized bed hydrodynamics via MRI contributes to reactor design optimization. Müller's interdisciplinary approach bridges fundamental science and industrial application, addressing global energy sustainability challenges.
Niklas Hedin is a Professor and Head of the Department of Chemistry at Stockholm University . His research group specializes in developing advanced materials for environmental and energy applications, with a particular focus on CO₂ capture technologies , green material synthesis , and biochar-based solutions for pollution mitigation and sustainable resource utilization. Professor at Department of Chemistry Head of Department Stockholm University affiliation The research spans from fundamental molecular spectroscopy studies to industrial-scale applications . Key projects include the use of activated limestone for Baltic Sea eutrophication control, colloidal porous liquids for energy-efficient carbon capture, and engineered biochars for dual environmental remediation and agricultural applications. Recent publications highlight 2025 breakthroughs in aminated cellulose aerogels , graphene oxide composites for direct air capture , and ultrasound-assisted hydrogen peroxide synthesis . These works demonstrate Hedin's commitment to multiscale material engineering combining experimental validation with computational modeling. The group includes several PhD students and postdoctoral researchers working on specialized aspects of material synthesis and environmental application. His team actively collaborates with industrial partners and government agencies to translate laboratory findings into real-world solutions for sustainable chemistry and climate change mitigation .
Armando J. D. Silvestre is a Full Professor at the Department of Chemistry, University of Aveiro. He holds academic degrees including a Licenciatura in Chemistry (1990), PhD in Chemistry (1994), and Agregação in Chemistry (2008) from the University of Aveiro. His research focuses on renewable materials, circular economy, and functional biomaterials. Research interests include: Development of biopolymer-based functional materials Valorization of biological residues for value-added chemicals Novel polymeric materials from renewable resources Sustainable nanocomposites and coatings Professor Silvestre has supervised 18 MSc and 11 PhD students to completion and currently mentors 3 PhD and 3 MSc candidates. Research projects include EU-funded initiatives like AFORE (Forest Biorefineries) and national projects on membrane technology and biomass valorization. Scientific contributions include over 180 SCI journal publications and patents on extraction methods. He serves on editorial boards for Industrial Crops and Products and actively participates in academic activities including Erasmus coordination and Bologna process implementation.
Dr. Yeshui Zhang is a Lecturer at the School of Engineering, University of Aberdeen, UK, since December 2021. Previously, she held a Faraday Institution Research Fellowship at University College London (2018–2021). University of Birmingham (BSc Environmental Management, 2012) University of Sheffield (MSc Energy and Environmental Engineering, 2013) University of Leeds (PhD Chemical and Process Engineering, 2017) Her research spans chemical and environmental engineering, focusing on: Energy storage materials (e.g., lithium-ion batteries) Pyrolysis-catalysis of waste materials High-temperature quartz crystal microbalance applications Carbon nanotubes synthesis Circular economy strategies for plastics Recent publications emphasize catalytic waste valorization for hydrogen-rich syngas, biomass pyrolysis mechanisms, and hybrid-functional catalyst design. She serves as Associate Editor for Carbon Capture Science & Technology and contributes to standards in battery manufacturing. Emerging Investigator Award, IChemE 2022 IAAM Young Scientist Medal 2022 Best Paper Award, 21st CCSSTA 2020 Dr. Zhang supervises PhD students in chemical engineering and leads the Meston Lab 155 at Aberdeen. Her work bridges academic research with industrial applications through memberships in the Royal Society of Chemistry and IChemE.
Frederic Meunier is a CNRS researcher based at IRCELYON (Institute of Chemistry of Lyon), part of the University of Lyon. He holds a European PhD in Physical Chemistry from the Universities of Strasbourg (France) and Limerick (Ireland), and a Habilitation to Direct Research from the University of Caen (France). His research focuses on heterogeneous catalysis, with expertise in operando FT-IR spectroscopy and reaction mechanisms, particularly in syngas chemistry and CO₂ conversion. He leads the ATARI team (Integrated thermodynamic, analytical, and reactional approaches) and has published over 100 papers (H-factor 35) and holds two worldwide patents. Key research interests include catalytic materials for environmental applications, such as CO₂ capture/methanation, water treatment, and sustainable chemistry. He has supervised 16 PhD theses and is an editorial board member of Catalysis Today and Applied Catalysis B: Environmental . In 2009, he received the Catalytic Division Award from the French Chemical Society. His work also explores microwave-assisted catalysis, nanomaterial synthesis, and advanced oxidation processes for pollutant remediation. Collaborative projects include studies on biochar-based materials, microwave-enhanced reactions, and catalyst stability under industrial conditions.
Sirui Li is a Postdoctoral Researcher in the Department of Chemical Engineering and Chemistry at Eindhoven University of Technology, specializing in plasma-based technologies for sustainable chemical processes. Their research focuses on carbon capture and utilization, plasma catalysis, and reactor design for CO 2 conversion and nitrogen fixation. Research interests center on plasma-assisted CO 2 conversion , with key areas including: Plasma-sorbent systems for simultaneous CO 2 capture and conversion Gliding arc and DBD reactor design for NO x synthesis and methane conversion Techno-economic analysis of plasma-based sustainable processes Dielectric materials and nanoparticle synthesis for catalytic applications Recent publications demonstrate a clear trend toward integrated plasma-reactor systems for carbon management, with emphasis on process intensification, thermal effects analysis, and scalability. The work bridges fundamental plasma chemistry with industrial application feasibility, particularly in renewable energy integration and fertilizer production. Award highlights include: Baldur Eliasson Award (2022) Best oral presentation award for 'Plasma-sorbent system for CO 2 capture and conversion' (2022) IEEE NPSS Young Professional Travel Grant (2024) Li actively contributes to major research projects including PLACHEM (plasma-assisted CO 2 conversion), GICO (gasification with CO 2 capture), and LEAP-Agri (on-site fertilizer production), while serving as guest editor for Frontiers of Chemical Science and Engineering and participating in international symposia on plasma technology.
Louise Olsson is a Professor and Head of the Department of Chemical Engineering at Chalmers University of Technology. Her research focuses on catalysis for emission control and alternative fuel production, combining experimental and kinetic modeling approaches. She leads a research group affiliated with the Competence Center for Catalysis (KCK), integrating basic and applied projects with industry partners. Her work spans catalyst design for exhaust gas purification, biofuel production via lignin valorization, and sustainable chemical processes. Notable research areas include sulfur poisoning mechanisms, NOx reduction catalysts, and kinetic modeling of catalytic systems. Over 230 publications highlight her contributions to catalysis, with recent studies exploring novel catalysts for expanded temperature ranges and bio-oil upgrading. Louise’s research emphasizes bridging fundamental science with industrial applications, addressing challenges in renewable energy and emission reduction. Her group’s collaborations with industry ensure practical impact, while their kinetic models provide insights into catalyst behavior under varying conditions.
Candace K. Chan is a Professor in the School for Engineering of Matter, Transport and Energy at Arizona State University , with a joint appointment in the School of Molecular Sciences graduate faculty. Her research bridges materials science , electrochemistry , and energy storage , with additional focus on water treatment technologies and photocatalysis . She leads the NSF Nanosystems Engineering Research Center for NEWT water treatment projects and holds multiple patents in solid-state electrolytes and clathrate battery materials . Education: Ph.D. in Physical Chemistry (Stanford University), B.S. in Chemistry (Rice University) Expertise: Inorganic/Materials Chemistry, Nanoscience, Renewable Energy Her research group specializes in solid-state battery materials , photocatalytic water treatment , and clathrate electrochemistry , with recent work on flexible battery mechanics and metal oxide photocatalysts . Publications focus on garnet-type electrolytes , Si/Ge clathrates , and LDH nanocomposites . Key scientific awards include: NSF CAREER Award (2016) Alexander von Humboldt Fellowship (2016–2018) ECS Battery Division Travel Grant (2014) ASU Fulton Exemplar Faculty (2017–2018) Advising: Mentored 12 Ph.D. students (e.g., Andrew Dopilka , Ting Yang ), 8 M.S. students, and 6 Barrett Honors Thesis students. Collaborates with international researchers from Max-Planck-Institut , Universität Göttingen , and Universidade Federal de Itajubá . Grants: Currently leads 3 active NSF/industry projects on solid electrolyte interphases , clathrate synthesis , and selective nano-sorbents . Completed 8 projects including SRP-funded selenium removal studies and ACS Petroleum Research Fund grants.
Professor Chunfei Wu is affiliated with the School of Chemistry and Chemical Engineering at Queen's University Belfast, UK. Specializing in thermochemical conversion of renewable resources and CO2 capture/utilization technologies, Wu leads cutting-edge research in sustainable energy systems. Research interests include: Development of heterogeneous catalysts for hydrogen and syngas production Carbon nanotube synthesis from waste hydrocarbons Integrated CO2 capture and conversion processes Thermochemical processing of biomass/plastics Recent publications focus on molten salt technologies (solar salts), oxygen carriers for chemical looping combustion, and photocatalytic CO2 reduction systems. Wu contributes to UN Sustainable Development Goals through carbon-neutral pathways research. Active in academic leadership as Founding Editor-in-Chief of Carbon Capture Science & Technology and Managing Editor of Biomass and Bioenergy , Wu supervises multiple research projects including: R3691CCE: Sewage Sludge Gasification R1661CCE: Bio-based Negative Emissions Technologies R1797CCE: Marine Plastic Waste Recycling R7511CCE: CO2 Capture with CaO Materials