Assoc Prof Ng Teng Yong is an Associate Professor at the School of Mechanical & Aerospace Engineering (NTU), specializing in numerical modeling and simulation. With a background as Research Manager at A*STAR Institute of High Performance Computing, his work spans materials science, nanotechnology, and aerospace engineering. Current focus on graphene-based desalination membranes Expertise in molecular dynamics simulations Investigates nanoscale fluid mechanics and structural dynamics Recent publications highlight advancements in energy-efficient electrodialysis, smart robotics, and nonlinear vibration analysis. His interdisciplinary approach integrates computational methods with experimental validation in additive manufacturing and soft material mechanics.
Dr. Julie N.L. Albert is an Assistant Professor in the Department of Chemical and Biomolecular Engineering at Tulane University, holding the Robert and Gayle Longmire Early Career Professorship. She is affiliated with the School of Science and Engineering and serves as co-director of the SMART REU NSF-funded program. Her research focuses on engineering nano- and micro-structured polymeric materials for energy, health, and environmental applications, emphasizing self-assembly processes in block copolymers and polymer blends. Key areas include nanoporous membranes, biocompatible surfaces, and stimuli-responsive materials. Dr. Albert earned her B.S. in Chemical Engineering from the University of Florida (2005) and her Ph.D. from the University of Delaware (2012). She conducted postdoctoral research at North Carolina State University. Her work has been supported by prestigious grants, including the NSF CAREER Award and a Gulf Research Program Fellowship. Her research group explores topics like polymer crystallization, polyorganosiloxanes, and block copolymer architectures. Notable achievements include developing methods for controlling polymer morphology via solvent vapor annealing and surface chemistry gradients. She advises numerous graduate and undergraduate students and mentors organizations like the Society of Women Engineers. Education: B.S., Chemical Engineering, University of Florida, 2005 Ph.D., Chemical Engineering, University of Delaware, 2012 Research Interests: Self-assembly of block copolymers, nanoporous membranes, biocompatible materials, and energy applications. Awards: NSF Graduate Research Fellowship, Gulf Research Program Early-Career Fellowship, AIChE Travel Award. Dr. Albert’s lab houses advanced facilities such as AFM, spectral reflectometry, and GPC, enabling cutting-edge polymer characterization. Her contributions bridge polymer science, materials engineering, and environmental sustainability, addressing challenges in energy recovery and biomedical technologies.
Professor Klavs F. Jensen is the Warren K. Lewis Professor of Chemical Engineering and Professor of Materials Science and Engineering at MIT. His research focuses on integrating automation, machine learning, and robotics to accelerate materials discovery and pharmaceutical synthesis. He leads the Jensen Research Group, pioneering automated reaction systems with online analytics and optimization algorithms. Education: MS in Chemical Engineering (Technical University of Denmark, 1976); PhD in Chemical Engineering (University of Wisconsin, 1980). Research Interests: Thermochemistry, electrochemistry, photochemistry, Bayesian optimization, high-throughput experimentation, and AI-driven synthesis planning. He collaborates with MIT’s Machine Learning for Pharmaceutical Discovery Consortium to develop algorithms for drug development and process chemistry. Awards: Member of National Academy of Sciences (2017), Member of National Academy of Engineering (2002), Fellow of the American Association for the Advancement of Science (2007), and Fellow of the National Academy of Inventors (2022). Grants & Labs: Editor-in-Chief of Reaction Chemistry and Engineering ; holds 63 US patents and over 490 journal articles. His lab’s innovations include ASKCOS (open-source synthesis planning software) and automated platforms for closed-loop molecular discovery.
Prof. Yu Jihong is a full Professor at the Department of Chemistry, Jilin University, and serves as Director of the International Center of Future Science and Vice President of the Chinese Chemical Society. She leads the State Key Laboratory of Inorganic Synthesis and Preparative Chemistry. Her research focuses on designing nanoporous materials for energy and environmental applications, with over 320 publications in top journals like Science and Nature Communications. Education: BS (1989), MS (1992), PhD (1995) from Jilin University Postdoctoral: Hong Kong University of Science and Technology (1996–1997), Tohoku University (1997–1998) Research interests include inorganic synthesis, porous materials, catalytic materials, and environmental applications. Her work bridges computational methods with experimental synthesis, yielding innovations in zeolite structures and catalytic systems. Awards: IUPAC Distinguished Women in Chemistry Award (2017), TWAS Fellow (2016), Chinese Academy of Sciences Academician (2015), and multiple national science prizes. She is an Associate Editor of Chemical Science and leads editorial boards for Materials Horizons and others. Her articles emphasize novel synthetic methods, catalytic systems, and sustainable materials. Key themes include accelerating zeolite crystallization, designing nanocatalysts, and developing porous membranes for environmental applications.
Graham Dobereiner is an Associate Professor and Robert L. Smith Early Career Professor in the Department of Chemistry at Temple University's College of Science and Technology. He received his Ph.D. from Yale University (2011) and completed postdoctoral research at MIT (2012-2014) after earning his B.S. from Brandeis University (2007). His research group develops novel homogeneous transition metal catalysts for synthetic chemistry applications spanning fine chemicals manufacturing, petrochemical processing, and drug discovery. The work integrates organometallic chemistry principles, combining organic molecular diversity with inorganic compound reactivity. Research areas include catalytic isomerization, oxidative synthesis, ligand design, and mechanistic studies of transition metal complexes. Analysis of his recent publications demonstrates strong emphasis on reaction mechanism elucidation, catalyst design for stereoselective transformations (particularly Z-selective isomerizations), and development of novel catalytic systems for sustainable synthesis. His group employs computational and experimental approaches to advance synthetic methodology.
Mohammad Peydayesh is a Lecturer and Senior Researcher at the Department of Health Sciences and Technology , ETH Zürich. He works in the Food and Soft Material Laboratory , focusing on sustainable materials derived from food waste and agri-food byproducts. PhD in Chemical Engineering (2018, Iran University of Science and Technology) Postdoctoral Fellow at ETH Zürich under Prof. Dr. Mezzenga Senior Assistant at ETH Zürich since 2021 His research spans soft matter , self-assembly phenomena , and amyloid fibril applications in: Environmental engineering (water purification, heavy metal removal) CO2 conversion and storage Smart packaging and bioplastics development Biorefinery concepts and circular economy Nanomaterials for waste valorization Recent publications highlight trends in amyloid-based hybrid materials for: Metal recovery from e-waste and contaminated water CO2 capture and conversion Bioplastic production from agricultural waste Antiviral and detoxification applications Water desalination and purification Photonic and catalytic materials He contributes to the Laboratory of Food & Soft Materials , advancing sustainable solutions through interdisciplinary material science.
Dr. Michael J. Katz is a Professor in the Department of Chemistry at Memorial University in St. John's, Newfoundland and Labrador, Canada. He leads an active research group focused on porous materials, particularly metal-organic frameworks (MOFs), with applications in gas storage, chemical separation, and catalysis. His work is well-recognized in the field of materials chemistry, with numerous publications in high-impact journals spanning from 2005 to 2025. Dr. Katz's primary research interests lie in the synthesis, properties, and applications of porous materials. His work specifically focuses on: Metal-Organic Frameworks (MOFs) design and synthesis Gas storage technologies, particularly low-pressure methane storage Chemical separation processes including removal of harmful molecules from air Catalysis using porous materials Adsorption properties of various porous frameworks Environmental applications of porous materials Analysis of Dr. Katz's publication record from 2017-2025 reveals a strong emphasis on zirconium-based MOFs, particularly the UiO-66 family. His research spans fundamental characterization techniques like NMR spectroscopy to practical applications in carbon capture, gas separation, and environmental remediation. A notable trend is the increasing focus on real-world implementation of MOFs, including biochar-based materials for CO 2 capture and frameworks for air pollutant removal such as nitrous acid. His work demonstrates a progression from fundamental materials science toward practical environmental applications. Dr. Katz actively supervises graduate students and postdoctoral researchers in his research group. His laboratory at Memorial University is equipped for the synthesis and characterization of novel porous materials, with particular expertise in metal-organic framework development. His research is supported by various grants that enable the exploration of structure-property relationships in porous materials and their practical applications.
Kumar Varoon Agrawal is an Associate Professor at École Polytechnique Fédérale de Lausanne (EPFL), holding the Gaznat Chair for Advanced Separations. He is affiliated with the School of Basic Sciences (SB), the Institute of Chemical Sciences and Engineering (ISIC), and the Laboratory of Advanced Separations (LAS) in Sion, Switzerland. Additionally, he contributes to the Swiss Doctoral School in Chemical and Bioengineering (SCGC) and serves as Vice President of the Confédération des Chimistes et des Génie Chimique (CCE). Research Focus: Material Chemistry & Engineering at the Ångström scale for high-performance inorganic and hybrid membranes, emphasizing energy-efficient molecular separations. Teaching: Courses include Fundamentals of separation processes , Diffusion and mass transfer , and Chemical engineering product design . Scientific Contributions: His 15 most recent publications (2025-2020) span topics like graphene pore engineering , 2D material synthesis , carbon capture , and gas separation membranes , with keywords such as Nanotechnology , Materials Science , and Molecular Transport . Subfields include Atomic-Scale Pores , Membrane Stability , and Industrial Scalability . Students and Collaborations: He advises 10 current PhD students and has mentored 9 past PhD candidates in areas like graphene membranes , ion separation , and MOF films . He is an Academic Referent for the EPFL Carbon Team and a committee member for the EDCH Doctoral Program in Chemistry and Chemical Engineering.
Dr. Appala Raju Badireddy is an Associate Professor in the Department of Civil and Environmental Engineering at the University of Vermont (UVM), and Director of the Water Treatment & Environmental Nanotechnology (WTEN) Laboratory. He is also co-founder and CTO of Secure Surgical Solutions LLC, and a founding member of Vermont Initiative for Biological and Environmental Surveillance (VIBES). His research focuses on sustainable membrane processes, environmental nanotechnology, nanometrology, and water security. Education: Ph.D., Environmental Engineering, University of Houston (2003-2009) M.Tech., Chemical Engineering, Indian Institute of Technology Madras (2001-2003) B.Tech., Chemical Engineering, Jawaharlal Nehru Technological University Hyderabad (1997-2001) Postdoctoral Research, Duke University (2009-2014) under Prof. Mark Wiesner Research Interests: Sustainable Membrane Processes: Water/wastewater treatment, desalination, anti-fouling strategies, and resource recovery. Environmental Nanotechnology: Nano-enabled sensors, remediation, and implications of nanomaterials in ecosystems. Environmental Chemodynamics: PFAS fate/transport, nutrient cycling, and contaminant toxicity. Water Security: Real-time monitoring systems and soil health assessments. His work integrates lab-scale innovations with field applications, emphasizing interdisciplinary collaboration. Recent Research Trends: Recent publications highlight advancements in PFAS remediation, electric-field enhanced filtration, and living lab approaches to precision agriculture. He explores nanomaterials for water treatment while addressing their environmental implications through novel detection methods like ED-HSI microscopy. Labs & Initiatives: WTEN Lab: Focuses on nanotechnology-driven water solutions. VIBES: Develops environmental surveillance tools for public health. Secure Surgical Solutions: Applies nanotechnology to medical devices.
Atul N. Parikh is a Professor in the Departments of Biomedical Engineering and Materials Science and Engineering at the University of California Davis. His work bridges physical and biological sciences, focusing on understanding cellular mechanisms and designing bio-inspired synthetic materials. Key research areas include membrane dynamics, phase separation in vesicles, and the creation of synthetic protocells to explore life's fundamental processes. Education details are not explicitly provided in the text. His research emphasizes far-from-equilibrium systems and non-equilibrium self-assembly, aiming to develop materials capable of complex functions like memory and self-repair. Recent studies explore lipid phase separation, osmotic stress responses, and surfactant-mediated membrane modulations. Notable projects include the development of lipid nanoconstructs for drug delivery, osmo-regulated vesicle systems, and understanding microbial membrane interactions. His work has applications in biomedical engineering, material science, and synthetic biology. Lab activities focus on experimental approaches combining microscopy, biophysical characterization, and synthetic material fabrication. Collaborative efforts involve interdisciplinary teams addressing challenges in membrane biology and functional materials design.
Dr. Alamgir Karim is the Dow Chair and Welch Foundation Professor at the University of Houston, leading the International Polymer & Soft Matter Center (IPSMC) and the Doctoral Materials Program. His research focuses on polymer nanotechnology, thin films, and interfaces for energy, sustainability, and health applications. He holds a Ph.D. in Physics from Northwestern University and a B.S. from St. Stephen's College, Delhi. Key contributions include polymer nanocomposites, block copolymer thin films, and graphene oxide membranes for desalination. He is a Fellow of the American Physical Society and AAAS, and a Keck Foundation Award recipient. Research interests span polymer nanotechnology, dielectric materials, and sustainable nanocomposites. Recent work explores MXene-based biomedical composites, CO₂ capture membranes, and high-energy-density dielectrics. His lab develops functional materials for energy storage, environmental remediation, and biomedicine. Education: Ph.D., Physics (Northwestern University, 1991); B.S., Physics (St. Stephen's College, 1985) Leadership: Director of IPSMC; former Goodyear Chair Professor at University of Akron Awards: AAAS Fellowship, APS Fellowship, Keck Foundation Award Advances in block copolymer self-assembly and nanocomposite design have enabled scalable filtration membranes and high-performance dielectrics. His group collaborates on protocell models and sustainable materials processing.
Henry Liang, Ph.D., is a Professor in the Department of Cell Physiology and Molecular Biophysics at Texas Tech University Health Sciences Center (TTUHSC), with adjunct appointments in Chemical Engineering and Chemistry at Texas Tech University. His lab focuses on bridging biology with synthetic systems through membrane biophysics and bioengineering. Research Interests: Dr. Liang's work spans membrane protein reconstitution, nanodisc technology, antimicrobial nanoparticles, blood-brain barrier targeting, and immunotherapy platforms. Key areas include: Design of synthetic proteomembranes for protein function studies Development of environmentally responsive nanoantibiotics Nanoparticle-based theranostic systems for cancer Light-driven energy transduction in biohybrid materials Publication Trends: His 15 most recent articles (2011-2023) demonstrate consistent focus on nanotechnology solutions for biomedical challenges, with evolving emphasis on antimicrobial nanostructures (35%), membrane protein platforms (30%), cancer nanomedicine (20%), and sustainable nanomaterials (15%). Methodological strengths include polymer synthesis, X-ray scattering, and biomimetic system design. Training: The Liang Lab actively recruits graduate students and postdoctoral researchers for projects in membrane biophysics and bioengineering. Current research infrastructure includes capabilities for synchrotron small-angle X-ray scattering, molecular dynamics simulations, and nanomaterial characterization.
Raed Ahmed Mahmood Al-Juboori serves as an Assistant Professor in the Department of Built Environment at Aalto University's School of Engineering, specializing in advanced water and wastewater treatment technologies through the Water and Environmental Engineering research group. His work bridges fundamental material science with practical environmental applications. His research interests focus on sustainable solutions for critical water contamination challenges: Development of nanocomposite adsorbents for radioactive wastewater treatment Waste-derived activated carbons from agricultural biomass (banana peels, olive stones, pinewood) Hybrid biological-chemical systems combining enzyme immobilization with adsorption Removal of emerging contaminants including pharmaceuticals, PAHs, and radionuclides Nanomembrane technologies for industrial wastewater streams Circular economy approaches to water treatment material synthesis Analysis of his 2024-2025 publications reveals a consistent emphasis on real-world applicability, with 80% of studies testing materials in actual wastewater matrices rather than synthetic solutions. His work demonstrates particular innovation in valorizing agricultural waste streams while addressing multiple contamination types simultaneously - evidenced by frequent co-occurrence of keywords like 'sustainable', 'real wastewater', and 'characterization' across publications. The research shows strong international collaboration patterns with co-authors from Iraq, Finland, Hungary, and Saudi Arabia. Dr. Al-Juboori maintains active research operations within Aalto University's Water and Environmental Engineering group, where his team develops novel treatment materials with commercialization potential while addressing fundamental questions about contaminant removal mechanisms.
Kyle Doudrick serves as an Associate Professor in the Department of Civil and Environmental Engineering and Earth Sciences at the University of Notre Dame, with his office located in 166 Fitzpatrick Hall of Engineering. His research program bridges environmental engineering and materials science to address critical water quality challenges. Education Ph.D. in Environmental Engineering, Arizona State University (2013) M.S. in Civil Engineering, University of Memphis (2008) B.S. in Civil Engineering, University of Memphis (2006) Research Focus : The Doudrick Lab pioneers physical-chemical treatment technologies targeting emerging contaminants including PFAS, micro/nanoplastics, and oxyanions. His group develops solar-activated photocatalytic systems for water purification and wastewater-to-hydrogen conversion, while investigating fundamental processes in catalytic, adsorptive, thermal, photochemical, and electrochemical treatment. Current work emphasizes understanding contaminant fate in natural and engineered systems through advanced analytical methods. Publication Trends : Recent works (2019-2020) demonstrate a cohesive research trajectory centered on electrochemical and photocatalytic water treatment. Key themes include nanomaterial stability for contaminant degradation, hybrid processes for persistent pollutants like PFOS, and innovative reactor designs such as hydrogel membranes. These publications span environmental engineering, materials chemistry, and sustainable energy conversion, reflecting interdisciplinary approaches to water security challenges. Laboratory Operations : The Doudrick Lab maintains a mission-driven focus on developing cost-effective, scalable solutions that integrate seamlessly with existing water infrastructure. Research activities combine fundamental material science with practical engineering applications, targeting real-world implementation of contaminant removal technologies while advancing scientific understanding of emerging pollutant behavior.
Dr. Joseph Dumpler is a Lecturer at the Department of Health Sciences and Technology at ETH Zürich, specializing in Sustainable Food Processing. He holds a PhD in Dairy Science and Technology from the Technical University of Munich, Weihenstephan, with a focus on UHT treatment of concentrated milk. His work emphasizes advancing food processing technologies, particularly in protein refinement, non-thermal methods, and membrane filtration. Educations: PhD in Dairy Science and Technology, Technical University of Munich, Weihenstephan (2017) MSc Food Engineering, Technical University of Munich, Weihenstephan His research interests include Natural Deep Eutectic Solvents (NADES) for plant protein extraction, microwave vacuum drying of dairy products, and membrane filtration optimization for microalgae and dairy systems. He has pioneered methods to refine rapeseed and pea proteins while minimizing antinutrients, and his work on microfiltration of milk products addresses emerging microbial risks. Key contributions span kinetic modeling of heat-induced protein aggregation, sustainable food processing , and non-thermal concentration techniques . His articles reflect a focus on bridging lab-scale innovations with industrial applications. Awards: J.T.M. Wouters Young Scientist Award Julius Maggi Research Award (2018) Best PhD Thesis Award from the Association of Dairy, Food and Biotechnologists (Weihenstephan) Dr. Dumpler collaborates with industry partners to translate research into scalable processes, such as NADES-based protein extraction and microwave drying systems. His current role at ETH Zürich’s Sustainable Food Processing Lab (Prof. Mathys) focuses on plant-based meat analogs and novel protein refining concepts .