Ivana Brekalo is a Researcher at the Ruđer Bošković Institute in Zagreb, Croatia, affiliated with the Division of Physical Chemistry and the Laboratory for Applied and Sustainable Chemistry. She holds a Ph.D. in Chemistry from Georgetown University (2019), with a thesis on "Solid State Synthesis and Study of Porous Materials," and completed her Master's (2012) and Bachelor's (2010) degrees in Chemistry at the University of Zagreb. Her work bridges mechanochemistry and materials science, focusing on scalable synthesis methods for functional materials. Doctor of Philosophy, Chemistry, Georgetown University (2013–2019) Master of Science, Chemistry, University of Zagreb (2010–2012) Bachelor of Science, Chemistry, University of Zagreb (2007–2010) Her research emphasizes mechanochemical synthesis, particularly for porous materials like metal-organic frameworks (MOFs) and coordination polymers. She explores solvent-free methods, polymorphism control, and the role of gas-phase catalysts in solid-state reactions. Recent publications highlight thermally controlled milling for agrochemical cocrystals, conductivity in alkali metal coordination polymers, and real-time monitoring of mechanochemical processes. Key publications include Nature Reviews Chemistry perspectives on advanced mechanochemical synthesis and Inorganic Chemistry studies on low-dimensional magnetism in MOF-74 materials. Her work appears in journals like ACS Sustainable Chem. Eng. and Chemical Science , with a focus on green and scalable methods. Scientific Awards Scholarship of the Polish National Agency for Academic Exchange – Ulam Programme (2020) Bepina Sabalić Kunin Fellowship (2013-2015, 2017-2018) Ludo Frevel Crystallography Scholarship, IUCr (2017) CCDC award for best presentation (2022) Brekalo contributes to outreach as the 2019 ACS Volunteer of the Year and has received recognition for her work on solvent-free polymorphism and mechanochemical templation of ZIFs.
Xiaodong Wang is a Professor at the Center for Integrative Chemical Biology and Drug Discovery within the Eshelman School of Pharmacy at the University of North Carolina at Chapel Hill. His research program focuses on developing innovative drug leads and candidates targeting novel protein kinases and other molecular targets identified by UNC faculty and external investigators. Dr. Wang's research interests center on structure- and ligand-based drug design approaches for developing therapeutic compounds, particularly kinase inhibitors targeting the TAM family (TYRO3, AXL, MERTK). His laboratory has successfully applied these methodologies to deliver compounds to clinical trials, including MerTK inhibitors and IDH1 inhibitors developed in collaboration with NCATS. Current research continues to focus on structure-based drug design for novel targets, with particular emphasis on cancer therapeutics and molecular imaging agents. Analysis of Dr. Wang's recent publications (2023-2025) reveals a strong focus on developing selective kinase inhibitors, particularly targeting the TAM receptor family (TYRO3, AXL, MERTK) for various cancer types including leukemia, Ewing sarcoma, and melanoma. His work spans multiple disciplines including medicinal chemistry, cancer biology, immunology, and molecular imaging, with recent publications appearing in high-impact journals such as Journal of Medicinal Chemistry, Nature Communications, and Leukemia. Dr. Wang maintains active collaborations across UNC-Chapel Hill and with external institutions, working with researchers in pharmacology, oncology, immunology, and structural biology. His laboratory develops both small molecule inhibitors and imaging agents, with several compounds progressing toward clinical applications. Contact information: xiaodonw@email.unc.edu | Wang Lab website
Dr. Martin Anthony Fascione is a Reader in Chemistry at the University of York, where he leads the Fascione Lab within the Department of Chemistry. His research focuses on the interface between chemistry and biology, particularly in the field of chemical glycobiology. He has established himself as a leading researcher in carbohydrate chemistry with expertise in synthetic methods and biological applications. Dr. Fascione received his Ph.D. from the University of Leeds in 2009 under the supervision of W. Bruce Turnbull, followed by a Marie Curie International Outgoing Fellowship at the University of British Columbia with Prof. Steve Withers and the University of York with Prof. Gideon Davies. Since August 2014, he has been at the York Structural Biology Laboratory, progressing from Lecturer to his current position as Reader. His research centers on complex sugars (glycans) and their roles in biological processes and disease, with particular emphasis on sialic acid-like molecules critical for bacterial pathogens. The Fascione group develops chemical tools to study and perturb glycan activity in vivo using synthetic and enzymatic carbohydrate chemistry, organocatalysis, enzymology, and molecular biology. Key research areas include pseudaminic acid biosynthesis, protein bioconjugation, and glycoconjugate development for therapeutic applications. Analysis of Dr. Fascione's recent publications reveals a strong focus on bacterial glycans, particularly pseudaminic acid, and their role in pathogenesis. His work combines synthetic chemistry with biological applications, developing novel methods for protein modification, carbohydrate synthesis, and glycan-based therapeutics. Major themes include bioorthogonal chemistry, enzymatic synthesis of complex carbohydrates, and the development of glycoconjugates for therapeutic and diagnostic applications. Dr. Fascione has received significant recognition for his work, including: Marie Curie International Outgoing Fellowship (2012-2014) ERC Consolidator Grant (2022) As an active researcher, Dr. Fascione supervises PhD students and collaborates extensively with researchers in the UK and internationally. His laboratory is involved in multiple research projects focused on chemical glycobiology for infectious disease research and therapeutic development. The Fascione Lab has established itself as a leading center for research at the chemistry-biology interface, with particular expertise in carbohydrate-active enzymes and glycan-based tools for biological investigation.
Anne-Sophie Chauvin is a Senior Lecturer and Researcher at École Polytechnique Fédérale de Lausanne (EPFL), School of Basic Sciences, within the Institute of Chemical Sciences and Engineering and the Supramolecular Chemistry Laboratory. She actively engages in supramolecular and inorganic chemistry, focusing on f-element (lanthanides and actinides) coordination polymers and luminescent bioprobes for biological and technological applications, including invisible inks and dye-sensitized solar cells. PhD in Bioinorganic Chemistry from University Paris V-René Descartes (thesis on Nitrile Hydratase mimetics) Postdoctoral work at University of Geneva on chiral alcohol configuration analysis Habilitation à Diriger des Recherches (HDR) from University René Descartes (2006) Her research spans Lanthanide and Actinide Chemistry , Luminescence , Coordination Polymers , Metallacages , and Photovoltaic Materials . Recent publications emphasize catalytic spiro stereocenter formation, actinide coordination polymers, and photoredox-enabled biomolecule functionalization. She has supervised PhD students including Andrei Andreichenko , Julien Andrès , Steve Comby , and Aurélien Willauer . Recognitions include Fellowship of the Royal Society of Chemistry (FRSC) and membership in the Swiss Chemical Society (SCS). Current roles include teaching General and Analytical Chemistry to first-year Pharmacy and Biology students at the University of Lausanne (UNIL), overseeing practical sessions, and serving on the EPFL School of Basic Sciences Faculty Council.
Prof Jean Van Den Elsen is a Professor of Biochemistry at the University of Bath , affiliated with the Department of Life Sciences and several research centers including the Centre for Sustainable Chemical Technologies (CSCT) , Centre for Therapeutic Innovation , and Milner Centre for Evolution . They are actively accepting doctoral students and leading multidisciplinary projects at the intersection of structural biology and immunology. Education: Not explicitly mentioned Appointments: University of Bath (current), with collaborations across Chemistry, Biology & Biochemistry departments Research Focus: The laboratory investigates protein structural biology in two major areas: Complement System Interactions: Studying how pathogenic microbes like Staphylococcus aureus evade host immunity through complement system manipulation , with structural analysis of proteins such as C3d and C5 complexes. This work directly informs vaccine design and autoimmune disease treatment . Glycation Mechanisms: Developing diagnostic tools for detecting non-enzymatic sugar modifications linked to diabetes , Alzheimer's , and aging, with commercial partnerships like Abcam . Article Trends: Recent publications demonstrate: Structural analysis of complement evasion proteins (2022-2025) Engineering knob domains as miniature antibodies (2023) Evolutionary studies on cooperative behavior (2021-2025) Advancements in peptide synthesis platforms (2022-2023) Applications of AI protein folding (2020) Scientific Contributions: ORCID: 0000-0002-0367-1956 BBSRC Funding recipient (2023) 100+ citations across 76 research outputs Student Mentorship: Directly supervising 4 current PhD students and 1 postdoc, with a track record of mentoring 11 previous students including Daphne Jackson Fellows and MSCA researchers. Collaborations: Maintains active partnerships with Dr. Tony James (Chemistry), Dr. Rob Williams (Biochemistry), and industry partners UCB Celltech and Porton Biopharma Ltd. Their work contributes to UN Sustainable Development Goals 3 (Good Health), 12 (Responsible Consumption), and 13 (Climate Action).
Hyun-soon Chong is a Professor of Chemistry at the Lewis College of Science and Letters , Illinois Institute of Technology. The Chong group focuses on interdisciplinary research spanning organic synthesis, medicinal chemistry, and nuclear medicine to develop targeted therapeutics for cancer and neurodegenerative diseases. Education : B.S. from Kyung Hee University, Ph.D. from the University of North Texas Research interests include: Organic synthesis using aziridinium ions Development of bifunctional chelators for radiotherapy/imaging Bioconjugate chemistry for antibody-drug conjugates Targeted cancer therapies and diagnostics Nuclear medicine applications with isotopes like Cu-64, Y-90, and Lu-177 Key publication trends show expertise in chelation chemistry, bioconjugation, and radiopharmaceutical development. The group has advanced aziridinium ion-based methodologies and created novel agents with preclinical efficacy. Labs/teams: The Chong group specializes in synthetic strategies for enantiomerically enriched molecules and biomedical chelators. Contact: chong@illinoistech.edu
Leigh David is a Professor of Chemistry at the University of Manchester, holding the Sir Samuel Hall Chair since 2014. Previously, he held prestigious roles such as the Forbes Chair of Organic Chemistry at the University of Edinburgh (2001–2012) and Chair of Synthetic Chemistry at the University of Warwick (1998–2001). His research focuses on synthetic molecular machines, supramolecular chemistry, and molecular knots, with notable contributions to the design of molecular motors and catenanes. David earned a BSc (Special Honours) and PhD in Chemistry from the University of Sheffield (1981–1987). He conducted postdoctoral research at the National Research Council of Canada (1987–1989) before joining the University of Manchester Institute of Science and Technology, where he advanced from Lecturer (1989–1996) to Readership (1996–1998). His research interests include developing synthetic strategies for molecular-scale machines, exploring applications in nanotechnology, and investigating dynamic covalent chemistry. Key areas involve creating molecular knots, interlocked structures, and systems capable of programmable motion. David has received numerous accolades, including the Royal Society Bakerian Medal (2013), ERC Advanced Grants (2008, 2014), and the Feynman Prize for Nanotechnology (2007). His work has been recognized globally through fellowships in the Royal Society (2009) and Royal Society of Edinburgh (2005). He leads a research group advancing molecular robotics and has secured major grants, such as the EPSRC Senior Research Fellowship (2005–2010). His lab focuses on translating molecular systems into functional devices with applications in materials science and biotechnology.
Dr. Yu Zhong is an Assistant Professor in the Department of Materials Science and Engineering at Cornell University's College of Engineering, where he leads the Yu Zhong Group. His research laboratory focuses on the design and synthesis of novel soft materials and nanomaterials for applications in electronics, energy, healthcare, and sustainability. As a principal investigator, he oversees a dynamic research team comprising postdoctoral associates, graduate students, and undergraduate researchers working on cutting-edge materials science projects. Dr. Zhong received his educational training at prestigious institutions, earning his B.S. in Chemistry from the University of Science and Technology of China (USTC) in 2011, followed by a Ph.D. in Chemistry from Columbia University in 2017 under the supervision of Prof. Colin Nuckolls. His doctoral research centered on designing contorted molecules for electronic and energy applications including organic solar cells, photodetectors, and gas sensors. He then conducted postdoctoral research at the University of Chicago in Prof. Jiwoong Park's group, where he worked on the design and synthesis of 2D polymers for ultrathin electronic circuits and energy conversion. Dr. Zhong's research program spans three primary directions: (1) the bottom-up synthesis of ultrathin nanoporous membranes using techniques like laminar assembly polymerization (LAP) for applications in water desalination, nanofiltration, and gas separation; (2) the study of transport behaviors in hybrid organic-inorganic 2D heterostructures created through layer-by-layer assembly for use in optical, electronic, and thermal management devices; and (3) the development of mixed ionic-electronic materials for bio-inspired and bioelectronic devices. His group employs advanced synthesis methods including organic/polymer synthesis, supramolecular and reticular chemistry, and 2D materials characterization to explore novel scientific phenomena and technological applications. An analysis of Dr. Zhong's recent publications reveals a strong focus on the synthesis and characterization of 2D polymers and organic-inorganic hybrid materials. His work bridges fundamental materials science with practical applications in energy conversion, electronics, and separation technologies. A notable trend is his development of innovative synthesis techniques like laminar assembly polymerization that enable precise control over material structure at the molecular level, leading to breakthroughs in areas such as lithium-ion transport, osmotic power generation, and ultra-narrowband photodetection. Dr. Zhong's scientific achievements have been recognized with several prestigious awards: Pegram Award for Meritorious Graduate Research, Columbia University (2016) Camille and Henry Dreyfus Postdoctoral Fellowship, Dreyfus Foundation (2016) Arun Guthikonda Memorial Fellowship, Columbia University (2015) Jack Miller Award for Excellence in Teaching, Columbia University (2014) As an advisor, Dr. Zhong mentors a diverse group of researchers including postdoctoral associate Qiyi Fang, multiple Ph.D. students (Yuhe Zhang, Kaushik Chivukula, William Xie), M.S. students, and undergraduate researchers. His group has secured funding for research on soft and nanomaterials, with projects spanning organic electronics, 2D materials synthesis, and biomimetic membranes. Dr. Zhong actively seeks motivated graduate students and postdoctoral fellows to join his research team, emphasizing the importance of interdisciplinary collaboration in advancing materials science. The Yu Zhong Group operates state-of-the-art laboratories in Bard Hall at Cornell University, equipped for organic synthesis, materials characterization, and device fabrication. The research team works collaboratively across disciplines, partnering with experts in physics, chemistry, and engineering to tackle complex challenges in materials science. Current projects focus on developing novel synthesis methodologies and exploring structure-property relationships in soft materials to enable next-generation electronic, energy, and healthcare technologies.
Chi Ting is an Assistant Professor of Chemistry at Brandeis University , focusing on organic synthesis and biosynthesis of natural products. Their work bridges chemical synthesis and biosynthetic pathway exploration to advance therapeutic discovery. Education : Ph.D. from University of California, Berkeley; B.S. from University of Illinois at Urbana-Champaign. Research Interests include: Concise total syntheses of complex natural products Development of novel organic reactions (e.g., chemoselective peptide functionalization) Investigation of biosynthetic mechanisms via genome mining Exploration of SAM-dependent enzymes and domain-of-unknown-function (DUF692) pathways Article Trends emphasize total synthesis (e.g., podophyllotoxin, hyperforin, RiPPs) and biosynthetic studies, with keywords spanning organic methodology, enzymatic transformations, and medicinal chemistry. Scientific Awards : Brandeis Career Hero 2022 NSF CAREER (2024-2029) Thieme Chemistry Award 2024 Grants include the NSF CAREER award for synthetic and biosynthetic research. Their lab (Edison-Lecks Science Building, Room 322) investigates chemical and enzymatic strategies for accessing therapeutic natural products.
Prof. Xing Yang is a Professor at KU Leuven's Institute for Sustainable Metals and Minerals (ISM2), leading the Process Engineering for Sustainable Systems (ProcESS) research group. His work focuses on developing membrane-based technologies for sustainable resource recovery and environmental protection, with strong emphasis on metallurgical and wastewater applications. His research centers on advanced membrane engineering for separation processes, particularly membrane distillation, electrodialysis, and solvent extraction-based systems. Key interests include designing stimuli-responsive membranes, optimizing ion-selective transport, and developing energy-efficient processes for metal recovery from end-of-life batteries and industrial waste streams. His work bridges materials science, chemical engineering, and environmental sustainability to address critical resource scarcity challenges. Analysis of his 15 most recent publications (2024-2025) reveals a dominant focus on lithium and transition metal recovery through electro-driven membrane processes. He pioneers innovations in membrane architecture – including macrocycle-based channels, zwitterionic coatings, and PVDF modifications – to achieve unprecedented selectivity in complex matrices. His research consistently targets industrial applicability, with demonstrated applications in battery recycling, wastewater valorization, and CO 2 capture systems. The ProcESS research group operates within KU Leuven's Institute for Sustainable Metals and Minerals, collaborating across metallurgy, environmental engineering, and materials science disciplines. Their work integrates experimental membrane fabrication with process modeling to develop scalable solutions for circular economy implementation in resource-intensive industries.
Sandeep Kumar Mishra, PhD, is an Associate Research Scientist in the Department of Radiology & Biomedical Imaging at Yale School of Medicine, where he holds a primary appointment in the Magnetic Resonance Research Center within the Division of Bioimaging Sciences. He completed his doctoral training at Pondicherry University (2017) and finished post-doctoral research at Yale in 2024 before transitioning to his current research-intensive faculty role. Education: PhD, Pondicherry University – 2017 Post-doctoral Associate, Yale University – 2024 Research Focus: Mishra’s work integrates multinuclear magnetic resonance spectroscopy, responsive paramagnetic probes, and nano-constructs to quantify the tumor microenvironment. Major themes include in-vivo mapping of interstitial pH and sodium gradients in gliomas, development of Fe(II)/Co(II)/Ni(II)-DOTA tetraglycinate complexes for simultaneous pH–temperature sensing, and engineering dual-modal nano-agents that couple MR angiography with therapeutic delivery (chemo-photothermal, cryo-ablation, MMP inhibition). Publication Trends: Across 28 peer-reviewed articles (2016-2025) he demonstrates a sustained trajectory in cancer imaging, moving from theranostic nanoparticles toward sophisticated spectroscopic imaging of tumor acid–base and ionic homeostasis, with increasing translational orientation involving rodent glioma and hepatocellular carcinoma models. Collaborations & Affiliations: He is embedded in Yale’s inter-disciplinary MR research ecosystem, collaborating recurrently with faculty in Radiology, Biomedical Engineering, and the Magnetic Resonance Research Center (D. Coman, F. Hyder, P. Herman, J. Verhagen, J. Santana, A. Shewarega). Contact: sandeepkmishra11@gmail.com | Magnetic Resonance Research Center, 300 Cedar Street, New Haven, CT 06519, USA
Joel Rosenthal is Professor and Chair of the Department of Chemistry and Biochemistry at the University of Delaware, where he also serves as Associate Dean for Research and Graduate Affairs in the College of Arts and Sciences. His group integrates inorganic synthesis, electrochemistry, and photochemistry to create functional materials and catalysts for energy, environmental, and biomedical challenges. Education & Training B.S. with Honors, New York University (2001) Ph.D., Massachusetts Institute of Technology (2007) NIH Postdoctoral Fellow, MIT (2007-2010) Research Directions The Rosenthal Research Lab pursues four intertwined themes: Environmental & energy sustainability via CO₂ reduction and solar-to-fuel conversion. Design of catalytic platforms for small-molecule up-conversion. Light-activated therapeutics targeting cancer and other diseases. Electrosynthetic routes to advanced inorganic materials and coordination complexes. To tackle these goals, the group synthesizes non-traditional tetrapyrroles, porous inorganic frameworks, and metal alloys, then interrogates them with electrochemical, spectroscopic, and ultrafast methods in collaboration with colleagues across UD, other universities, and National Laboratories. Recent Publication Trends Between 2021-2025 the group has published extensively on (i) selective electrochemical CO₂ reduction using bismuth, tin, and alloy catalysts, (ii) structure–function relationships in palladium and ruthenium tetrapyrrole complexes for singlet-oxygen generation, and (iii) new metal–organic framework (MOF) electrosyntheses. The work bridges fundamental mechanistic insights with practical device demonstrations, including 3-D-printed flow cells and solar-powered reactors. Scientific Awards & Honors While specific awards are not enumerated in the provided text, Prof. Rosenthal has garnered recognition through sustained federal funding, invited colloquia, and extensive peer-reviewed publication records. Students, Collaborators & Infrastructure The group actively recruits graduate students, post-docs, and undergraduates interested in interdisciplinary research. Trainees gain expertise spanning chemical synthesis, electrochemical cell design, ultrafast spectroscopy, computational modeling, and biological assays through partnerships both on campus and at national user facilities. The lab maintains state-of-the-art instrumentation for electrochemistry, photochemistry, and materials characterization, and communicates its latest findings via Twitter @rosenthal_lab .
David W. Christianson is the Roy and Diana Vagelos Professor in Chemistry and Chemical Biology at the University of Pennsylvania's School of Arts & Sciences. His research focuses on structural and chemical biology of metalloenzymes, particularly histone deacetylases (HDACs) and terpene biosynthesis enzymes. He holds a B.A. from Harvard College (1983), A.M. and Ph.D. from Harvard University (1985, 1987). Education: A.B. in Chemistry, Harvard College (1983) A.M. in Chemistry, Harvard University (1985) Ph.D. in Chemistry, Harvard University (1987) Research interests include HDAC structure-function relationships, terpene cyclase catalysis, and enzyme architecture. Key findings include HDAC6's role in cancer therapy, HDAC10’s identification as a polyamine deacetylase, and cryo-EM studies of assembly-line terpene synthases. Articles Trends: Recent work emphasizes selective HDAC inhibitors (e.g., difluoromethyl-oxadiazoles for HDAC6), structural insights into terpene synthase dynamics, and engineering substrate channeling in bifunctional enzymes. Awards: Over 20 honors, including the Searle Scholar Award, Guggenheim Fellowship, and Lindback Teaching Award. He also serves as a Visiting Professor at Harvard and holds fellowships at institutions like the Royal Society of Chemistry. Advising & Grants: Advised numerous students (not listed explicitly). Active in NIH-funded projects on HDAC inhibitors and terpene biosynthesis. Lab fosters interdisciplinary approaches, combining crystallography, cryo-EM, and synthetic chemistry. Labs/Teams: Leads the Christianson Lab at Penn Chemistry, focusing on metalloenzyme mechanisms and drug discovery. Collaborates with groups at NIH, industry partners, and international institutions like the University of Cambridge.
Mark MacLachlan is a distinguished Professor and currently serves as the Dean of the Faculty of Science at the University of British Columbia (UBC). He leads a vibrant research group in the Department of Chemistry focused on supramolecular materials, with expertise spanning organic, inorganic, and polymer chemistry. His work bridges fundamental molecular design with practical applications in energy, electronics, and sustainable materials. Dr. MacLachlan's research interests center on supramolecular chemistry and materials science, with emphasis on nanomaterials, porous structures, and cellulose-based systems. His group develops novel organic and inorganic molecules and materials with applications in electronics, photonics, catalysis, and environmental technologies. Key research areas include mesoporous materials for optics and catalysis, supramolecular chemistry with macrocycles, structurally interesting molecules, and self-assembled systems including gels. His work often addresses environmental challenges and alternative energy applications such as solar energy conversion and hydrogen fuel cells. Analysis of his recent publications reveals a strong focus on cellulose nanocrystals and their applications in photonic materials, energy storage, and responsive systems. His work integrates supramolecular chemistry with platinum-based systems for molecular machines and recognition. The research demonstrates interdisciplinary approaches combining chemistry, materials science, and nanotechnology to create functional materials with precisely controlled properties. Fellow of the Royal Society of Chemistry (UK) (2016) Tier 1 Canada Research Chair in Supramolecular Materials (2015-2029) Elected Fellow of the Royal Society of Canada (FRSC) (2014) Rutherford Memorial Medal (Royal Society of Canada) (2013) Killam Award for Excellence in Graduate Student Mentorship (UBC) (2013) NSERC Steacie Memorial Fellowship (2012-14) Dr. MacLachlan has mentored numerous graduate students and postdoctoral researchers, fostering a collaborative research environment that spans multiple disciplines. His group employs a wide range of characterization techniques including electron microscopy, spectroscopy, and X-ray crystallography. The MacLachlan research group maintains active collaborations with institutions worldwide, including the WPI Nano Life Science Institute at Kanazawa University where he serves as a Visiting Professor. The MacLachlan group operates state-of-the-art facilities for synthesizing and characterizing novel materials, with particular expertise in chiral nematic structures, mesoporous materials, and supramolecular assemblies. Their work on cellulose nanocrystals has led to innovative applications in photonic materials, energy storage devices, and responsive systems.
Etienne Boutin is a Postdoctoral Researcher at the Laboratory of Renewable Energy Science and Engineering (LRESE) at École Polytechnique Fédérale de Lausanne (EPFL), affiliated with the School of Engineering and Institute of Mechanical Engineering . His work focuses on electrochemical and photo-electrochemical systems for CO 2 and CO reduction, particularly toward methanol production. Email: etienne.boutin@epfl.ch Office: MED 0 2923 (Bâtiment MED), Station 9, 1015 Lausanne His research spans Renewable Energy , Electrochemistry , and Catalysis , with a focus on molecular catalysts, reaction mechanisms, and modeling for low-temperature CO 2 reduction systems. Recent work explores confined molecular catalysts, surface charge boundary conditions, and hybrid solar-driven devices. The LRESE lab at EPFL supports his research into sustainable chemical processes, including the design of photocathodes, porous carbon electrodes, and strategies for carbon utilization. His publications from 2019–2025 highlight advancements in methanol synthesis, formaldehyde quantification, and catalyst stability.