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.
Unni Olsbye is a Professor in the Department of Chemistry at the University of Oslo, Faculty of Mathematics and Natural Sciences. Her research focuses on catalytic processes in micro- and nanoporous materials, with particular emphasis on structure-composition-function correlations in catalytic reactions and mechanistic studies of product formation. She is affiliated with several research groups including the Catalysis Section, SMN (Center for Materials Science and Nanotechnology), ProfMOF A/S, and iCSI (industrial Catalysis, Science and Technology). Professor Olsbye's research interests center on heterogeneous catalysis, particularly examining how the chemical composition of catalytic sites, their immediate environment, and steric factors influence reaction rates and selectivity in porous materials. Her work spans zeolites, zeotypes, and metal-organic frameworks (MOFs) for applications in CO 2 conversion, methane activation, methanol-to-hydrocarbons processes, and light alkane dehydrogenation. She investigates confinement effects in micro- and nanoporous materials, with processes studied including C-H activation, C-O activation, methane partial oxidation to methanol and syngas, methyl halide conversion, and ethene oxychlorination. Analysis of her recent publications reveals a strong focus on energy-related catalysis for sustainability, particularly CO 2 conversion to fuels and chemicals, methane activation to methanol, and olefin production. Her work frequently employs copper-based catalysts in zeolites and MOFs, with increasing attention to bio-inspired catalytic systems. The research combines experimental approaches with advanced characterization techniques to understand reaction mechanisms at the molecular level. Professor Olsbye leads or participates in several significant research projects including BIZEOLCAT (bifunctional catalysts for alkane activation), CCU-NET (Nordic mobility network), CO 2 LO (CO 2 hydrogenation, TRL1-3), COZMOS (CO 2 hydrogenation, TRL3-5), CUBE (C-H activation, ERC Synergy), and ProfMOF (MOF scale-up and testing). These projects address critical challenges in catalysis for sustainable energy and chemical production. Her laboratory work focuses on advanced characterization of catalytic materials, particularly using in situ and operando techniques to monitor reactions as they occur. The research group collaborates extensively with experts in organic and inorganic synthesis, advanced spectroscopy, and theoretical calculations to develop a comprehensive understanding of catalytic processes in confined environments.
Jooyeoun Jung is an Assistant Professor in the Department of Food Science & Technology at Oregon State University. She holds affiliations with the university's Food Science and Techno Headquarters and has been part of the OSU Main Campus since 2016. Her career includes roles as a Senior Researcher and Assistant Professor of Practice at the University of Nebraska-Lincoln (2018-2021) before returning to Oregon State in 2022. Educated at Oregon State University with a Ph.D. in Food Science & Technology, her research focuses on sustainable food processing, value-added food product development, and innovative food packaging solutions. Key areas include edible coatings using nanocellulose, antimicrobial packaging technologies, and utilization of agricultural byproducts for eco-friendly materials. Her work emphasizes enhancing food shelf-life through advanced coating technologies, improving packaging functionality, and addressing challenges in food preservation such as mold control, lipid oxidation, and microbial inhibition. She has pioneered studies on hazelnut processing, blueberry anthocyanin stabilization, and fruit pomace valorization. Jung teaches courses like Introduction to Sustainable Food Processing (FST327) and collaborates on interdisciplinary projects involving food safety, material science, and agricultural engineering. Her research has led to innovations in molded pulp packaging, radiofrequency pasteurization, and functional food film development. Professional affiliations include the Institute of Food Technologists, reflecting her commitment to advancing food science through industry collaboration and academic rigor.
Ethan A. Scott is a Research Assistant Professor in the Department of Mechanical and Aerospace Engineering at the University of Virginia. He holds a B.S. (2015) and Ph.D. (2021) in Mechanical and Aerospace Engineering from UVA, followed by a postdoctoral research associate position at Sandia National Laboratories. His research focuses on experimental techniques for analyzing heat and energy transfer in extreme material conditions, including micro- and nanoscale phenomena. He serves as Deputy Director of the EXSiTE Lab led by Professor Patrick Hopkins. Education: B.S., Mechanical Engineering, University of Virginia (2015) Ph.D., Mechanical and Aerospace Engineering, University of Virginia (2021) Postdoctoral Research Associate, Sandia National Laboratories (2021–2023) Research Interests: Ethan explores advanced thermal transport phenomena using electro- and optothermal methods. Key areas include micro/nanoscale heat transfer, microfabrication, and infrared thermal detection. His work addresses challenges in material size extremes (e.g., nanoscale thin films) and environmental extremes (e.g., high-energy ion irradiation effects). Publications: His recent work emphasizes thermal conductivity manipulation through ion irradiation, optothermal sensor development, and novel material characterization. Themes include defect engineering in crystalline systems and optimizing thin-film thermometry for high sensitivity. Awards: Editor’s Pick, Applied Physics Letters (2021) Nuclear Regulatory Commission Fellowship (2017) Labs & Teams: Deputy Director of the EXSiTE Lab, focusing on experimental studies of thermal and mechanical properties of materials under extreme conditions.
Dr. Sumsun Naher is a Senior Lecturer in the Department of Engineering at City, University of London , where she has worked since 2013. Previously, she served as Lecturer and Research Development Officer at Dublin City University (2006–2013) and as Scientific Officer at Bangladesh Council of Scientific & Industrial Research (1998–2000). Her academic career includes a Post Graduate Diploma in Academic Practice from City, University of London. PhD , School of Mechanical & Manufacturing Engineering, Dublin City University MSc , Materials & Metallurgical Engineering, Bangladesh University of Engineering and Technology BSc , Materials & Metallurgical Engineering, Bangladesh University of Engineering and Technology Her research focuses on semi-solid processing , laser processing , simulation & modelling of materials technologies , and materials characterisation . Recent work explores cellulose nanofiber-based water filters for antibiotic removal and phase change materials in geothermal energy systems. Key article trends reveal expertise in: Laser Surface Modification of metals and composites Advanced Casting Methodologies and semi-solid metal forming Nanoparticle Reinforcement in metal matrix composites Thermal Modelling for energy systems Sustainable Material Solutions in water treatment and energy Computational Materials Science via finite element analysis Naher has received the DCU Invent Commercialisation Award (2011) and holds fellowships from IMechE , Institute of Materials, Minerals & Mining , and Advance Higher Education Authority . She actively reviews for funding bodies and examines PhD theses internationally. As an organiser of the ESAFORM Conference and co-organiser of its Additive Manufacturing symposium since 2017, she contributes to academic leadership. Her professional roles include Board of Directors for the European Association of Materials Forming and participation in EU COST Action projects (Thixoforming, Thixosteel, Nanostructured Materials).
Juhyeon Ahn is an Assistant Professor at the Department of Chemical and Biomedical Engineering , University of Wyoming . He leads the Ahn Research Group , focusing on electrochemical energy storage technologies , including lithium-ion , sodium-ion , and solid-state batteries . Ph.D. in Chemical Engineering, Yonsei University Project Scientist (2024) and Postdoctoral Researcher (2023-2019), Lawrence Berkeley National Laboratory and Korea Institute of Science and Technology His research integrates novel materials discovery , advanced characterization techniques (e.g., synchrotron X-ray, microscopy), and data-driven methodologies to address energy storage challenges. Key areas include cathode material optimization and surface modification strategies for enhanced battery performance. Recent publications highlight trends in high-energy-density batteries , fluorination techniques , and stepped layered titanates . His work spans Li-ion , Na-ion , and solid-state systems , with emphasis on structural stability , electrochemical evaluation , and advanced characterization . For direct contact, Juhyeon Ahn can be reached at juhyeon.ahn@uwyo.edu or (307) 766-6780. The departmental address is Engineering 4044, University of Wyoming, Laramie, WY 82071.
Peter Awakowicz is a Senior Professor and former head of the Chair of Electrical Engineering and Plasma Technology at the Faculty of Electrical Engineering and Information Technology , Ruhr-Universität Bochum . His work focuses on plasma physics and technology, with applications in surface treatment, sterilization, and diagnostics. He is affiliated with the Department of Applied Electrodynamics and Plasma Technology, where he leads interdisciplinary research combining experimental plasma science with technological innovation. Research Interests: Plasma-assisted surface modification and thin-film deposition Dielectric barrier discharges and atmospheric pressure plasmas Plasma sterilization and biomedical applications Plasma-catalysis for environmental and energy applications Advanced plasma diagnostics and optical emission spectroscopy His recent publications demonstrate a strong focus on volatile organic compound (VOC) conversion , NO dynamics in low-pressure plasmas , microdischarge behavior , and plasma-assisted pyrolysis . These works highlight his expertise in both fundamental plasma physics and applied plasma engineering. Contact & Resources: Email: awakowicz@aept.rub.de Faculty Page: https://etit.ruhr-uni-bochum.de/en/faculty/professorships/prof-dr-ing-peter-awakowicz/ Google Scholar: https://scholar.google.de/citations?user=MPKunGAAAAAJ
Professor Jun Huang is a faculty member in the School of Chemical and Biomolecular Engineering at the University of Sydney, where he holds the rank of Professor and is Director of the Laboratory for Catalysis Engineering. He is also a Domain Leader for Materials at the nanoscale at Sydney Nano Institute and a member of several interdisciplinary institutes, including the China Studies Centre and Sydney Institute of Agriculture. His research focuses on catalysis engineering, with an emphasis on developing sustainable processes for renewable fuels, pollutant treatment, and greenhouse gas mitigation. Huang has held prestigious awards such as the Australia Research Council Future Fellowship (2022) and the Sydney Accelerator Fellowship (2018). Education: Huang earned his PhD from the University of Stuttgart (2008) and completed postdoctoral research at Georgia Institute of Technology and ETH Zurich. He joined the University of Sydney in 2010 as a Lecturer, advancing to Senior Lecturer, Associate Professor, and Professor. Research Interests: Huang's work centers on catalyst design for green chemical processes, including biomass conversion to biofuels, wastewater treatment, and CO2 utilization. He emphasizes sustainable manufacturing and environmental impact reduction through innovative catalytic systems. Current Projects: These include catalytic transformation of hydrocarbons/CO2/biomass, nano-catalysts for renewable energy, and advanced NMR spectroscopy for catalysis analysis. Collaborative projects involve anti-cancer therapies and drug pharmacology studies. Awards: Over 15 awards, including the 2021 ACS Sustainable Chemistry & Engineering Lectureship and 2017 Vice-Chancellor’s Research Excellence Award. Teaching: Huang instructs courses such as CHNG2801 (Conservation Processes), CHNG3802 (Industrial Systems), and advanced chemical engineering topics. He supervises PhD/Master students in catalysis and sustainable engineering. Labs/Teams: Leads the Catalysis Engineering Lab and collaborates with Sydney Nano Institute on nanomaterials research.
Renny Edwin Fernandez is an Associate Professor in the Department of Engineering at Norfolk State University's College of Science, Engineering and Technology. His multidisciplinary research focuses on microsensing platforms for healthcare, pollution control, and agriculture applications. Education: PhD in Electrical Engineering (2010) from Indian Institute of Technology Madras His research integrates microfabrication, microfluidics, and machine learning to develop wearable biosensors, disposable electrodes, and IoT-enabled soil monitoring systems. Key trends in his recent publications include: Real-time health monitoring via flexible nanosensors Machine learning integration in agricultural IoT Plasma-aided printing of conductive nanomaterials Smart PPE systems with NFC technology Scientific Awards: Research Initiation Award (2020) for cognitive monitoring systems in extreme environments Dr. Fernandez mentors graduate and undergraduate researchers at NSU, with prior teaching experience at University of Indianapolis and Florida International University. He holds a patent for biosensor technology and has developed innovative solutions for: Salivary cortisol detection Soil nutrient analysis Cell viability assessment Smart irrigation systems
Gary Koenig is Associate Professor of Chemical Engineering at the University of Virginia. His research program focuses on advanced materials for energy storage systems, particularly lithium-ion batteries and flow batteries. He holds a PhD from University of Wisconsin-Madison and completed postdoctoral research at Argonne National Laboratory. His group develops novel electrode architectures, including thick sintered electrodes and all-active-material designs, to improve battery energy density and rate capability. Research spans materials synthesis, electrochemical characterization, and transport modeling to overcome limitations in current energy storage technologies. Honors include the NSF CAREER Award (2017) and Fulbright Research Fellowship (2020). Recent publications examine electrode processing techniques, lithium extraction methods, and transport phenomena in battery systems. His work demonstrates innovations in electrode design that enable higher energy densities while maintaining cycling stability. He has taught courses including Applied Statistics, Chemical Reaction Engineering, and Energy Technology Options.
A/Prof HO Han Kiat is an Associate Professor in the Department of Pharmacy and Pharmaceutical Sciences at the National University of Singapore. His research focuses on chronic liver disease progression (from fatty liver to cancer) and drug-induced liver injury mechanisms. He explores nanomaterial applications in disease modification and drug delivery, using techniques like high-throughput sequencing and preclinical collaborations with clinicians. His work bridges cancer biology and toxicology, emphasizing clinical relevance through patient sample correlations. He teaches courses such as PR4207 Applied Pharmacokinetics & Toxicokinetics and FSC4203 Forensic Toxicology & Poisons. His lab’s vision involves developing molecular interventions for liver disorders through in vitro/vivo models. Notable interests include nanomaterial toxicity, hepatoprotective strategies, and cytokine profiles in cognitive impairment post-chemotherapy. Recent articles highlight studies on BDNF biomarkers, gold nanoparticle vascular targeting, and therapeutic hypothermia for hepatotoxicity. His research integrates genetic polymorphism analysis (e.g., CYP7A1) with drug metabolism studies, emphasizing personalized medicine approaches. HO’s work also addresses educational innovations in pharmacy curricula and assessment design, reflecting his dual focus on clinical research and pedagogy.
Yves Leterrier is a Senior Scientist and lecturer at École Polytechnique Fédérale de Lausanne (EPFL), where he has been a faculty member since 1993. He works in the Laboratory for Processing of Advanced Composites (LPAC) within the Institute of Materials at the School of Engineering. His academic career spans over three decades with significant contributions to sustainable materials science and polymer composite technologies. Senior Scientist, Laboratory for Processing of Advanced Composites (LPAC) Teaching roles in SMX and EDMX programs PhD program committee member for Materials Science and Engineering Author of over 300 technical articles including 145 peer-reviewed journal papers Leterrier's research focuses on sustainable materials and processes, particularly in polymer composites, multilayer and hybrid materials, photopolymerization and sol-gel processes, mechanics of thin films on polymers, and roll-to-roll process methods. His work bridges fundamental materials science with practical applications in flexible electronics, renewable energy, and sustainable packaging. He has pioneered techniques for creating bioinspired surfaces, diffusion-barrier coatings, and cost-effective manufacturing processes for advanced materials. His recent publications reveal a strong emphasis on water permeation monitoring in bioelectronic implants, fluorine-free superhydrophobic surfaces, and biobased composites using nanocellulose. His research shows a clear trajectory toward sustainable materials solutions with applications in medical devices, flexible electronics, and environmentally friendly packaging. The consistent theme across his work is the development of reliable, high-performance materials through innovative processing techniques and composite design. Leterrier actively contributes to the academic community through editorial roles, including serving on the editorial board of Applied Surface Science since 2012 and as Associate Editor for Frontiers in Materials since 2014. He coordinates EPFL's Minor on 'Engineering for Sustainability' and has been President of the EPFL Materials Science Library commission since 2000. His leadership extends to industry collaboration through multiple funded research projects. His current research portfolio includes significant projects such as BioPack (biobased packaging materials), FLEXCAN (flexible encapsulation of active implants), 3DP4PEACE (sustainable 3D printing), and DuPrintProtect (advanced manufacturing). Previously, he led projects including XinoCaps, UltraCeal, SUNLITE, and REFLEX, demonstrating consistent funding success across diverse materials science applications. He also serves on the board of the French Adhesion Society and has organized international symposia on materials and micro-technologies. Leterrier leads the Laboratory for Processing of Advanced Composites, where his team develops cutting-edge materials processing techniques. His work on photo-hyphenated methods, UV nanoimprint lithography, and electro-fragmentation analysis represents the laboratory's focus on innovative characterization and manufacturing approaches for advanced materials.
Dr. John Rohde is an Associate Professor in the Department of Microbiology & Immunology at Dalhousie University's Faculty of Medicine. His research focuses on understanding mechanisms of bacterial pathogenesis, particularly how Shigella spp. exploits host cell systems. He holds a PhD in Biochemistry from the University of British Columbia and completed postdoctoral training at Duke University, Institut Pasteur, and Mount Sinai Hospital's Samuel Lunenfeld Research Institute. His lab develops genetic tools to study bacterial virulence at systems levels. Education: BS/MS in Bacteriology (University of Idaho), PhD in Biochemistry (UBC) Research Interests: Shigella pathogenesis, ubiquitin ligases, type III secretion systems Recent work includes studies on Shigella's manipulation of host actin via RACK1 and the role of ubiquitin in pathogen survival. He collaborates internationally on projects combining proteomics and immunology to uncover antimicrobial defense mechanisms.
Feyruz V. Rassool is a Professor at the University of Maryland School of Medicine, with primary appointment in Radiation Oncology. She serves as Co-director of the Experimental Therapeutics Program at the University of Maryland Greenebaum Comprehensive Cancer Center (UMGCCC) and holds an adjunct Associate Professor position at VARI’s Center for Epigenetics. Her research focuses on DNA damage/repair pathways in cancer, particularly their therapeutic exploitation through PARP and DNMT inhibitors. Education: B.Sc. in Human Genetics (1983, University College London), Ph.D. in Biological Sciences (1990, Royal Postgraduate Medical School) Postdoctoral Training: University of Chicago (1990-1994) Her work explores the intersection of DNA repair , epigenetics , and mitochondrial dysfunction to develop novel therapies for breast, ovarian, lung, and leukemias. Key projects include STING-dependent interferon signaling , pathogen mimicry in cancer cells, and metastasis suppression through PARPi/epigenetic combinations. Dr. Rassool is part of the SU2C Epigenetics Dream Team and has secured multiple grants from NCI, NIH, and the Adelson Medical Research Foundation. Her recent preclinical studies with PARP/DNMT inhibitors are being translated into Phase I/II trials for AML and TNBC. Scientific Awards Ziskin Award (2012) NCI-SPORE Grant Co-Leader NIH/NCI P30 CA134274 Support Grant She has mentored 13 PhD/postgraduate researchers and collaborates on clinical trials with Pfizer, VARI-SU2C, and ASTRO. Her lab employs techniques like DNA repair assays , RNAseq , and mouse xenograft models to investigate mechanisms of action for epigenetic drugs.
Amol Patil is a Research Engineer at the Institute for Frontier Materials (IFM), Deakin University, Australia. He holds an MTech in Textiles from IIT Delhi and a PhD in Textiles from Deakin University. His career spans industrial experience in Quality Assurance, R&D, and Product Development, followed by academic research focused on dyeing and finishing of textiles , environmental impact of textiles , and sustainable chemistry in fibre manufacturing . A key collaborator in industrial projects, he works on fibre-to-fibre recycling and microplastic pollution mitigation in laundry processes. Education: MTech (IIT Delhi), PhD (Deakin University) Affiliation: Institute for Frontier Materials, Deakin University Collaborations: ARC Research Hub for Functional and Sustainable Fibres, HeiQ-Marine Bioproducts (MBCRC) Research Trends The 15 most recent articles highlight his expertise in conductive polymers applied to cotton and polyester textiles, with implications for EMI shielding , gas sensing transducers , and smart materials . Topics include durable antimicrobial finishes , superhydrophobic treatments , and atmospheric aging resistance in textiles. His work bridges chemical engineering and environmental sustainability, particularly in reducing water usage and microplastic release during laundry.