Irene Taurino is an Assistant Professor (tenure track) in the Faculty of Engineering Science at KU Leuven, affiliated with the Department of Physics and Astronomy and the Department of Electrical Engineering (ESAT). She leads the Laboratory of Electrochemical Materials and Bio Interfaces (eMATI), focusing on nano- and microtechnologies for biomedical applications. Her work emphasizes developing advanced electrochemical systems for therapeutic and sensing purposes, including biodegradable platforms and stretchable substrates. Research Interests: Electrochemistry, Nanotechnology, (Bio)sensing, Drug delivery, Bimetals/Metal Oxides, and Smart materials. Projects include HumiPlast (plant transpiration sensors), QuantPAH (firefighter health monitoring), and TALENT (thin-film deposition technologies). She holds leadership roles in Leuven One Health, LIMNI, and the Plant Institute. Advising & Grants: Promotes/Co-promotes 10+ projects on biosensors, CO2 electroreduction, and smart farming. Key roles in funding initiatives like EU Horizon and industry partnerships. Labs/Teams: Heads eMATI, fostering interdisciplinary research in bioelectronics and soft materials. Emphasizes creativity and translational research from fundamental science to practical applications.
Yao Yang is an Assistant Professor in the Department of Chemistry and Chemical Biology at Cornell University's College of Arts and Sciences. His research focuses on developing multimodal operando electron microscopy and synchrotron X-ray methods to probe electrochemical dynamics at solid-liquid interfaces for energy materials. PhD, Cornell University (2021) Miller Postdoctoral Fellow, UC Berkeley (2021-2024) Research interests span fundamental electrochemistry and energy material interfaces, particularly CO2 reduction, clean H2 production, and rechargeable batteries. The Yang group specializes in operando electrochemical liquid-cell scanning transmission electron microscopy (EC-STEM) and correlative synchrotron X-ray methods at Cornell Center for Materials Research (CCMR) and Cornell High Energy Synchrotron Source (CHESS). Recent publications highlight atomic-scale imaging of catalyst dynamics, Tafel slope analysis, and epitaxial growth techniques for enhanced electrocatalysts. Articles demonstrate interdisciplinary approaches combining electrochemistry, nanoscience, and advanced characterization. Scientific Awards: 2025 ACS Materials and Interfaces Outstanding Presentations by Young Investigators Award 2024 Journal of Materials Research Distinguished Invited Speaker Miller Postdoctoral Fellowship (2021-2024) 2023 Best Early Career Presentation at MRS Spring 2022 ACS AC/DC Rising Stars in Analytical Chemistry Contact: yaoyang@cornell.edu
Peter Strasser is a Full Professor of Chemistry and Chemical Engineering at the Technical University Berlin, Germany. He holds a Diplom (MSc) in Physical Chemistry from Tübingen University (1995) and a PhD from the Fritz-Haber-Institute of the Max-Planck-Society (1999), supervised by Prof. Gerhard Ertl. His research focuses on electrocatalysis, CO₂ electroreduction, and materials science for energy storage/conversion. He has held roles at the University of Houston (2004–2007) and Symyx Technologies (2000–2004). Education : Tübingen University (1988–1995), Stanford University (1991), Università di Pisa (1992) Affiliations : German Chemical Society (GDCH) leadership roles, Electrochemical Society (ECS) committee memberships Research interests include structure-function relations in electrocatalysts, electrochemical oxygen evolution/reduction reactions, and in-situ spectroscopic techniques. He has organized major conferences such as the “Electrochemistry 2022” meeting and co-chairs symposia on fuel cells and electrolyzers. His entrepreneurial activities include mentoring startups like DexLeChem GmbH and LiquidLoop GmbH. Awards : Carl Wagner Memorial Award (2023), Faraday Medal (2021), Otto-Hahn Medal (2000) Grants/Advising : Extensive funding and mentorship in energy materials research He leads the Technische Chemie division at TU Berlin and collaborates internationally, including guest professorships in China. His work bridges fundamental electrochemistry with industrial applications in renewable energy systems.
Yali Tang is an Assistant Professor in the Department of Mechanical Engineering at Eindhoven University of Technology (TU/e), specializing in fluid dynamics and transport phenomena within multiphase flows and physicochemical conversions . Her work targets Iron Power technology , green steel production , and alkaline water electrolysis for hydrogen generation, combining advanced computational models with experimental validation . Education: Master's in Chemical Engineering from Sichuan University (2011) PhD in Mechanical Engineering at TU/e (2015) with Prof. Hans Kuipers Research Interests: She focuses on interphase interactions , interfacial transport mechanisms , and high-resolution simulations (down to 40 nm mesh) to predict bubble coalescence and film dynamics. Her studies on hydrogen bubble growth , dendritic iron formation , and gas distribution in electrolyzers aim to refine reactor design and industrial processes. Collaborations with industrial partners ensure practical applicability of her computational models. Recent Publications: Her 2025 work includes dimensional analysis of liquid film formation, solutal Marangoni effects in electrolysis, and X-ray validation of gas distribution models. Earlier studies (2020–2023) cover defluidization behavior of iron fines, CFD-DEM modeling of raceways, and acoustic field applications in particle dynamics. Labs & Collaborations: She leads computational efforts within the Power & Flow group under Prof. Niels Deen, contributing to the EIRES Research cluster. Her work bridges academic research with industrial innovation in fluid dynamics and energy transition technologies.
Prof. Marc Koper is a Professor of Catalysis and Surface Chemistry at Leiden University, affiliated with the Leiden Institute of Chemistry (LIC) . His research focuses on sustainable energy and chemistry, particularly electrocatalytic redox reactions of carbon, nitrogen, and oxygen compounds. He leads a dynamic research group with 17 current PhD candidates, including Ariba Adnan, Karen van den Akker, and others. Koper’s work bridges experimental, theoretical, and catalyst design principles to advance energy transition technologies. His research interests span catalysis , electrochemistry , and surface chemistry , with a focus on CO 2 reduction , nitrate reduction , and electrochemical water oxidation . Recent studies emphasize solvent effects, cation roles in catalysis, and nanostructured electrode design to enhance reaction selectivity and efficiency. Notable achievements include the Antwerp Honorary Doctorate (2024) for contributions to sustainable energy research. His publications explore topics like platinum hydride formation, double-layer capacitance measurement challenges, and the mechanisms of electrochemical CO 2 reduction on metal surfaces. Koper’s work also addresses industrial-scale applications, such as optimizing gas bubble detachment during hydrogen evolution and designing bipolar membranes for CO 2 electrolysis. Advisor to over 38 former PhD students, Koper’s teaching spans Electrochemistry (MSc) and Chemical Energy Transition (Minor). He collaborates widely, with projects funded by initiatives like the ANION Gravitation Program and the ELCOREL EU Horizon 2020 Project .
LIN Meng is an Associate Professor at the Department of Mechanical and Energy Engineering , Southern University of Science and Technology (SUSTech) . He holds a Ph.D. in Mechanical Engineering from Swiss Federal Institute of Technology in Lausanne (EPFL) (2018) and has held postdoctoral positions at Caltech's Joint Center for Artificial Photosynthesis (2018-2019). Research Interests include solar thermal/thermochemical/(photo)electrochemical energy conversion devices , CO2 capture and utilization , and multi-scale modeling and simulation . His work focuses on optimizing energy systems through advanced computational models and cross-disciplinary integration of physics. Recent Publications highlight his contributions to solar fuel processing, CO2 conversion technologies, and hybrid electrochemical systems, with articles in Nature Communications , Joule , and Energy & Environmental Science . His research emphasizes scalable solutions for sustainable energy and carbon management. Scientific Awards ASME Graduate Student Award (2018) Outstanding Reviewer of Solar Energy (2018, 2015) Swiss National Science Foundation Postdoc Fellowship (2017) Shanghai Outstanding Master Thesis (2016) Shanghai Jiao Tong University Outstanding Graduate (2013)
Chao Wang is an Associate Professor at the Department of Chemical and Biomolecular Engineering within the Whiting School of Engineering at Johns Hopkins University. He also serves as the Director of the Nano Energy Laboratory and the department’s Master’s Admissions Director. His research focuses on sustainable energy systems and nanomaterials for CO2 capture and conversion, electrocatalysis, thermocatalysis, and green chemical engineering. Education: Bachelor’s degree, University of Science and Technology of China (2004) Doctorate, Brown University (2009) Wang’s research targets efficient energy conversion and storage via nanomaterials with tailored atomic structures, emphasizing catalytic activity, selectivity, and stability. His group explores electrochemical and thermochemical processes for reduced carbon footprints, including CO2 and methane conversion, ammonia recovery, and phosphorus/nitrogen nutrient recycling using zeolite-based systems. Recent publications (2021–2024) highlight his work in high-entropy alloys, solid-state battery materials, CO2 electroreduction, and biomedical nanotechnologies. Collaborative efforts span catalysis, nanoparticle dynamics, and environmental applications. Grants include a $1M DOE award for multi-university research, a $625K DOE grant for electrified transportation systems, and $3M in startup funding for carbon-removal technology commercialization. Alumni under his mentorship include Ph.D. graduates like Michael J. Manto (2018) and Master’s students like Mitchell Keller (2018), with notable achievements in catalyst development for ammonia/phosphorus recovery and industry placements at Grace & Co. and GEA Engineering.
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.
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.
Prof. Roland A. Fischer is a Full Professor at the Chair of Inorganic and Metal-Organic Chemistry at Technical University of Munich (TUM). Previously, he held a Full Professorship at Ruhr University Bochum (1997–2015). His research focuses on multifunctional metal-organic frameworks (MOFs), clusters, and composites for energy conversion, catalysis, gas storage, and environmental applications. He leads the Catalysis Research Center and has pioneered advancements in MOF-based catalytic systems and stimuli-responsive materials. Education: 1981–1986: Diplom in Chemistry (TUM) 1989: PhD, Dr. rer. nat. (TUM) 1995: Habilitation (TUM) Research Interests: His work integrates molecular and extended catalytic systems, including: - Design of MOFs for photocatalytic fuel production - Nanoparticle encapsulation in robust frameworks - Redox-switchable materials and photochromic systems - Cluster chemistry and superatom complexes - Applications in energy storage, environmental remediation, and biomedical technologies. Major Achievements: Over 680+ publications, h-index 101 (Scopus 2025) Coordinator of EU projects (SURMOF, ENHANCE, DEFNET) Recipient of Heinz-Maier-Leibnitz Award (1993) and Alfried Krupp Award (1996) Editorial roles: Angewandte Chemie , Chemical Vapour Deposition Grants & Teams: He has secured major grants including DFG Priority Programs (CVD-Materials, COORNETs) and led interdisciplinary teams in EU initiatives. His lab collaborates globally, including visiting professorships at Kyoto University and IIT Bombay. Labs & Facilities: His research uses advanced facilities like the Catalysis Research Center and contributes to platforms such as the Munich Catalysis Alliance. Key tools include atomic layer deposition, in situ characterization, and MOF-based device fabrication.
Asst. Prof. OU Pengfei is an Assistant Professor and NUS Presidential Young Professor in the Department of Chemistry at the National University of Singapore, Faculty of Science. He leads the AI for Chemistry (AI4Chem) research group, focusing on computational catalysis, machine learning, and materials science. Previously, he was a Research Associate at Northwestern University and a Postdoctoral Fellow at the University of Toronto under Prof. Edward H. Sargent, and earned his Ph.D. from McGill University. Education: Ph.D., McGill University, 2020 M.Eng., Central South University, 2015 B.Eng., Central South University, 2012 Research interests include catalyst design for electrochemical reactions using ab initio DFT, molecular dynamics simulations, and AI-driven methods. He develops dynamic simulations of chemical processes under reaction conditions and machine learning tools for accelerated catalyst discovery. His work addresses challenges in energy and environmental applications such as CO2 reduction and hydrogen evolution. Notable awards include the NUS Presidential Young Professorship (2024), Climate Positive Energy Postdoctoral Fellowship (2021), and Chinese Government Award for Outstanding Self-Financed Students Abroad (2020). Labs/Teams: The AI4Chem group integrates theory-guided and data-driven approaches to advance computational catalysis, with three core research directions: (1) reaction mechanism exploration and catalyst optimization, (2) dynamic structure-performance relationships under reaction conditions, and (3) machine learning algorithms for high-throughput screening.
Professor Bing-Jie (Bruce) Ni is an Adjunct Professor at the University of Technology Sydney (UTS) within the School of Civil and Environmental Engineering and a full Professor at UNSW Sydney. He is an internationally recognised leader in environmental engineering, wastewater treatment, greenhouse-gas mitigation, microplastics fate, electrocatalysis and sustainable energy systems. Education PhD in Environmental Engineering, University of Science and Technology of China, Hefei (2005–2009) Research Interests Professor Ni’s research integrates process engineering, microbial biotechnology, materials science and mathematical modelling to develop sustainable technologies for high-efficiency pollutant removal, minimal carbon footprint and maximal energy recovery from wastewater. He is a global pioneer in: Modelling and control of nitrous oxide (N₂O) and methane (CH₄) emissions from wastewater systems, Micro- and nano-plastics ecotoxicity and mitigation in anaerobic digestion, Transforming sewage sludge into high-value liquid bio-energy (medium-chain fatty acids and long-chain alcohols), Designing cost-effective electrocatalysts from natural minerals for green hydrogen production and wastewater electrolysis. Research Output & Impact Over the last decade he has published 2 research books, 30 book chapters and >400 refereed journal papers , including 35 in Environmental Science & Technology and 85 in Water Research . His work has influenced global policy: the IPCC adopted his nitrous-oxide-emission model in 2019 to revise national greenhouse-gas inventories for the first time in 13 years. Awards & Recognition ARC Future Fellowship & ARC DECRA Fellowship Clarivate Analytics Highly Cited Researcher (Web of Science) Royal Society of Chemistry Highly Cited Researcher (2020–present) Mendeley Data Top 2 % Cited Researchers worldwide Listed among “Australia’s Most Innovative Engineers” (Engineers Australia, 2018) 50+ additional awards including Scopus Young Researcher Award, South Australian Water Awards, UQ Research Excellence Awards, and Outstanding Doctoral Dissertation Awards. Research Funding & Leadership He has secured ≈ AUD $10 million in competitive funding (six major ARC grants plus >20 government, university and industry projects). He serves as: Lead Guest Editor, Water Research Editorial Advisory Board, Environmental Science & Technology Associate Editor for Journal of Cleaner Production , Environmental Chemistry Letters , Environmental Research , Journal of Environmental Management Editorial Board member for five additional high-impact journals. Teaching & Supervision At UTS he teaches Renewable Energy Technologies , Environmental and Sanitation Engineering , Process Dynamics and Control , and Water and Wastewater Treatment . He is available to supervise Masters and PhD students in environmental biotechnology, process modelling and sustainable energy systems. Laboratory & Commercial Translation He heads active research teams at both UNSW and UTS and is the inventor of >10 granted patents , some of which are currently being commercialised to deliver real-world impacts in greenhouse-gas-neutral wastewater treatment and renewable energy production.
YEO Boon Siang, Jason is an Associate Professor and Deputy Head (Education) in the Department of Chemistry at the National University of Singapore (NUS). His research focuses on developing advanced materials for sustainable energy conversion, particularly in CO 2 reduction and water splitting, using cutting-edge analytical techniques like operando spectroscopy. He holds a Dr. Sc. from ETH Zürich and a postdoc fellowship at Lawrence Berkeley National Laboratory. Education: Dr. Sc., ETH Zürich (2005-2009) M.Sc., National University of Singapore (2004) B.Sc. (Hons) First Class, National University of Singapore (2001) Research interests emphasize designing robust catalysts for energy-efficient CO 2 conversion to fuels and chemicals, with a focus on understanding reaction mechanisms at the atomic level. Recent work includes breakthroughs in acetylene-to-1,3-butadiene electroreduction and carbonate-to-formate conversions. Teaching contributions in AY2024/2025 include CM5244 Advanced Environmental Chemistry. He has received multiple teaching awards, including the Faculty Teaching Excellence Award (2013-2020) and the Annual Excellence Teaching Award (2014/2015). Key achievements include over 10 high-impact publications in Nature Catalysis , J. Am. Chem. Soc. , and Angew. Chemie Int. Ed. , focusing on electrocatalytic CO 2 reduction and material design.
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.
Scott Geyer is an Associate Teaching Professor of Chemistry at Wake Forest University, located in Winston-Salem, NC. He holds a B.S. (2005) from the University of Virginia and a Ph.D. (2010) from the Massachusetts Institute of Technology, followed by postdoctoral research at Stanford University. Research Focus : Dr. Geyer’s research bridges chemical education and materials science. In pedagogy, he emphasizes laboratory course design to enhance student decision-making and scientific communication skills, particularly for graduate program applications. His materials research explores nanocrystal-based catalytic systems for energy applications, including water splitting, CO2 reduction, and photocatalytic processes. Key Contributions : His work includes developing trifunctional electrocatalysts for water splitting, lead-free perovskite alternatives for CO2 reduction, and scalable H2O2 electrosynthesis. His studies often combine computational modeling (e.g., DFT simulations) with experimental synthesis of nanomaterials. Awards & Recognition : No specific awards listed, though his publications reflect sustained contributions to catalysis and nanomaterial research. Advising & Grants : While no advisees are listed, his teaching role likely involves mentoring undergraduate and graduate students in laboratory practices and research methodologies. His work is supported by grants focused on sustainable energy materials. Labs & Teams : Engaged with Wake Forest’s chemistry department labs, contributing to interdisciplinary efforts in nanomaterials and sustainable chemistry.