Prof. Mahiar Max Hamedi is a Professor at KTH Royal Institute of Technology, affiliated with the CBH School and Digital Futures Faculty. His research focuses on developing sustainable functional materials for energy storage, advanced biosensors, and nanoelectronics. He leads the research project 'Democratizing Digital DNA Diagnostics' and is PI for innovations in portable diagnostics and next-gen batteries. His work integrates biomaterials like cellulose nanomaterials with synthetic nanomaterials (e.g., MXenes, CNTs) to address global challenges in energy and healthcare. Entrepreneurial ventures include co-founding Simplygon (acquired by Microsoft) and /SALT for tech upskilling. Active in Digital Futures, a cross-disciplinary center addressing societal challenges via digital tech. Research interests emphasize biohybrid systems, wearable devices, and sustainable energy solutions. His lab’s innovations include paper-based biosensors, compressible supercapacitors, and MXene-based materials. Over 50 peer-reviewed articles showcase advancements in material science and nanotechnology.
Sergio Barbero is an Associate Researcher at the Visual Optics laboratory of the Instituto de Óptica (CSIC), Spain, under the supervision of Prof. Susana Marcos. He holds a BSc in Physics from the University of Zaragoza (1999) and a PhD in Visual Sciences from the University of Valladolid (2004), which earned him the Doctoral Thesis Extraordinary Award (2005). His research focuses on optical aberrations, intraocular lens design, wavefront measurement techniques, and gradient-index modeling of ocular structures. Barbero has collaborated with international groups at Indiana University (USA), University of Houston (USA), and Australian institutions. His work includes pioneering studies on crystalline lens tomography, corneal ablation algorithms, and novel wavefront sensing methods. He has authored 16 peer-reviewed publications and contributed to a US patent on wavefront reconstruction techniques. His research spans three core areas: (1) intraocular lens design using analytical tools, (2) gradient-index modeling of the human eye, and (3) in vivo measurement of crystalline lens aberrations. He has secured grants from the Spanish government (I3P-CSIC), NIH (USA), and Fulbright fellowships. Barbero has presented 33 scientific talks/posters, including invited lectures, and maintains an h-index of 9. His work bridges fundamental optics with clinical applications in ophthalmology.
Mahler András , Associate Professor at the Faculty of Engineering (Budapest University of Technology and Economics), specializes in Geotechnical Engineering and Soil Mechanics within the Department of Engineering Geology and Geotechnics . His research integrates numerical modeling and empirical testing to address geotechnical challenges in infrastructure and construction materials. Department: Engineering Geology and Geotechnics Email: mahler.andras@emk.bme.hu Courses: Soil Mechanics, Geotechnical Finite Element Analysis, Numerical Methods in Geotechnics Research Focus Mahler's work emphasizes: Geotechnical Testing : CPT-Vs correlations, hypoplastic parameter calibration, and permeability studies. Material Behavior : Analysis of rolled asphalt, concrete seepage, and collapsible soils. Seismic Applications : Liquefaction hazard assessment and seismic fragility of embankments. His recent publications highlight advancements in soft clay characterization , asphalt modeling , and sustainable soil stabilization using sewage sludge ash. Awards Építő250 Scholarship
Dr. Farkas-Karay Gyöngyi serves as Assistant Professor at the Department of Hydraulic and Water Resources Engineering within the Faculty of Civil Engineering at Budapest University of Technology and Economics (BME). She teaches core courses including Groundwater (BMEEOVVMV63), Hydrogeology (BMEEOGMMG62), and Hydraulic Engineering, Water Management (BMEEOVVAT43), maintaining office hours Fridays 10:00-12:00 in room K. ép / mf. 12/7. Education: Civil Engineering BSc (2011) Structural Engineering MSc (2013) PhD (2018) Research Focus: Her expertise centers on fractured and karst aquifer systems, conducting hydraulic investigations of complex rock formations, developing methodologies for pumping test evaluation in fractured media, and implementing numerical models for groundwater flow characterization. This work bridges theoretical hydrogeology with practical water resource management applications. Publication Trends: Analysis of her 2013-2017 publications reveals consistent advancement in fractured/karst aquifer characterization techniques. Key contributions include non-linear flow analysis in pumping tests, transmissivity determination from mining operations, and integrated physical-numerical modeling approaches. Her research demonstrates strong methodological rigor across laboratory experiments, field data interpretation, and computational simulation. Scientific Awards: No awards documented. Advising and Grants: Available materials contain no information regarding student supervision, research grants, or funded projects.
Anne Seidlitz is a Professor of Pharmaceutical Technology at the Free University of Berlin since October 2024, previously holding the same position at Heinrich Heine University Düsseldorf (2021-2024). Affiliated with the Institute of Pharmacy , she leads the Seidlitz Pharmaceutical Technology Group , focusing on solid dosage forms and biorelevant drug release studies using 3D printing and hydrogel compartments . Doctorate in Pharmaceutical Technology (Greifswald, 2009) Habilitation in Natural Sciences (Greifswald, 2015) Qualified Person under German Medicines Act (AMG) Visiting Professorships: Hamburg, Jena Research Interests: Formulation development for implants , intravitreal injections , and subcutaneous delivery systems , with emphasis on biorelevant dissolution testing under physiological flow/movement conditions. Her group pioneers 3D-printed drug delivery devices and custom hydrogel models for vitreal , ear canal , and vascular implants . Publication Trends: Recent articles focus on thermal stability of steroids during extrusion, individualized implant design , and hydrogel compartments for non-oral dissolution testing . Key collaborations include EUFEPS Network and APV (Association for Pharmaceutical Process Engineering). Scientific Involvement: Member of EUFEPS Network on Bioavailability Scientific Council, German Federal Chamber of Pharmacists Active in APV (Arbeitsgemeinschaft für Pharmazeutische Verfahrenstechnik) Student Supervision: Mentored 24+ theses including 3D-printed tablets , implant coatings , and vitreal drug distribution . Collaborates with institutions in Düsseldorf , Jena , and Hamburg .
Mads Røge Eldrup is an Assistant Professor at the Department of the Built Environment, Aalborg University, within the Faculty of Engineering and Science. His research focuses on coastal engineering, wave dynamics, and structural resilience of marine infrastructure. He leads the Ocean and Coastal Engineering Research Group and contributes to the BLUE – Marine & Maritime Research initiative. Research interests include breakwater stability, nonlinear wave modeling, physical model testing, and numerical simulation techniques. Key projects involve the RESCUER initiative (2024-2028) addressing resilient coastal solutions. He has authored/co-authored 46 publications since 2014, with recent work on NL-SORS wave decomposition, submerged bar dynamics, and rock armour stability. He actively participates in international conferences and workshops, including sessions on Smoothed Particle Hydrodynamics and nonlinear wavemaker theory. Collaborations span institutions globally, focusing on coastal resilience and hydraulic engineering challenges.
Klaus Mosthaf is an Associate Professor in the Department of Environmental and Resource Engineering at the Technical University of Denmark (DTU), where he conducts research on contaminant transport and numerical modeling in porous and fractured media. His work focuses on protecting groundwater resources through advanced modeling of contamination from substances like PFAS, chlorinated solvents, and pesticides. He is actively involved in teaching and academic leadership, coordinating the Nordic Masters program Enviro5Tech and the Sino-Danish Center module on Pollutants and Pollution Control. Research Interests: Transport processes in porous media Groundwater contamination and remediation Numerical modeling of reactive transport Aquifer Thermal Energy Storage (ATES) Fractured and variably saturated geologies Coupled porous-medium and free-flow systems His recent publications reveal a strong focus on PFAS fate, bioremediation in ATES systems, and tracer-based characterization of glacial tills. He employs tools like COMSOL Multiphysics, Python, and FEFlow to develop predictive models grounded in laboratory and field data. Scientific Contributions: Active contributor to over 60 publications in hydrogeology and environmental engineering Key developer of models for coupled processes in subsurface systems Organizer and speaker at international conferences on multiphase flow and contaminant transport Advising and Grants: Klaus Mosthaf supervises multiple PhD students and has coordinated significant research projects, including those on PFAS transport and bioremediation. He is the main supervisor of two active PhD projects and has previously co-supervised two others. His leadership extends to board membership in the Danish Academy of Technical Sciences on Soil and Groundwater (ATV Jord og Grundvand), where he fosters collaboration among academia, consultants, and public authorities. Laboratories and Research Groups: His work is conducted within DTU Sustain, a leading research environment in environmental engineering, where he collaborates with experts in hydrogeology, bioremediation, and sustainable technologies. He is deeply integrated into a network of national and international collaborators focused on groundwater protection and sustainable subsurface utilization.
Dr. Alraune Zech is an Assistant Professor at the Department of Earth Science, Utrecht University , and a Guest Scientist at the Department of Computational Hydrosystems, Helmholtz Centre for Environmental Research - UFZ . Her work focuses on Hydrogeology and Groundwater Modeling , particularly in quantifying Aquifer Heterogeneity and Transport Theory . Education: Diploma in Mathematics, University of Leipzig (2009) PhD in Environmental System Science, Friedrich-Schiller-University Jena (2013) Research Interests: Alraune investigates transport experiments , field-scale dispersion , and statistical aquifer parameter estimation from pumping tests. Her projects include groundwater simulations in the Thuringian Basin and revisiting transport theories with modern tools. Publications highlight her contributions to macrodispersivity estimation , geostatistical toolboxes , and heterogeneous aquifer modeling . Recent works in Groundwater and Advances in Water Resources emphasize practical applications and theoretical advancements. Collaborations include projects with the UFZ, Utrecht University, and international institutions. She has contributed to interdisciplinary efforts in groundwater-surface water coupling and contaminant transport analysis .
Dr. Omid Veiseh is a Professor of Bioengineering and CPRIT Scholar in Cancer Research at Rice University, directing the Biotechnology Launch Pad initiative. He leads interdisciplinary research in engineering cell-based therapeutics and biomaterials for diseases like cancer and diabetes. His lab develops implantable systems combining synthetic biology, immunoengineering, and material science to create 'living pharmacies' for real-time biologic production. He has authored over 80 publications and holds 50+ patents, co-founding biotech companies with $500M+ in funding. Education: Ph.D. in Materials Science & Engineering/Nanotechnology, University of Washington (2009) Postdoc at MIT/Harvard Medical School under Prof. Robert Langer (2011-2016) B.S. in Cell Biology, Western Washington University (2002) Research Focus: Innovating biomaterials to modulate immune responses, vascularized tissue engineering, and localized drug delivery systems. Key areas include cytokine factories for cancer immunotherapy, anti-fibrotic biomaterials, and implantable bioelectronic systems. His work bridges lab-to-clinic translation through partnerships with industry and clinical networks. Awards: MedTech Boston’s 40 Under 40 (2017) Controlled Release Society Fellow Member, National Academy of Inventors Advising & Grants: Leads multi-disciplinary teams with industry and academic collaborators, securing funding from NIH, CPRIT, and private investors. His translational efforts aim to accelerate FDA-approved therapies through the Biotech Launch Pad. Advises students on biomaterials development and preclinical testing. Labs/Teams: Veiseh Lab at Rice, focused on biomaterials engineering, cell therapies, and biofabrication. Collaborates with MIT, Harvard, and industry partners on clinical trials for IL-2/IL-12 immunotherapies.
Seyyed A. Hosseini is a Research Professor at the Bureau of Economic Geology (BEG), Jackson School of Geosciences, University of Texas at Austin . His work focuses on subsurface fluid dynamics with applications to geological carbon storage (CO 2 sequestration) and underground hydrogen storage . Education: Ph.D. in Petroleum Engineering (University of Tulsa, 2008) M.S. in Biotechnology (Sharif University of Technology, 2005) B.S. in Chemical Engineering (University of Isfahan, 2002) Research Interests include: Multiphase fluid flow in porous media Pressure-pulse testing for CO 2 monitoring Reservoir engineering fundamentals Machine learning for subsurface energy projects Geomechanical impacts of fluid injection Environmental risk assessment for CO 2 and hydrogen storage Article Trends reveal his expertise in developing applied methodologies for CO 2 and hydrogen storage, emphasizing machine learning integration , 3D modeling , and fault leakage detection . Recent work explores deep learning workflows and microfluidic experiments for subsurface energy systems. Grants and Funding PI on a $1.5M DOE/NETL grant (2015) to study brine extraction for CO 2 storage pressure management Collaborative Initiatives include the SMART program for machine learning in CCS and partnerships with institutions in Mississippi, Texas, and the Gulf Coast . His research extends to laboratory experimentation following BEG's facility upgrades.
Sheng C. Dai is an Associate Professor and group coordinator in Geosystems Engineering at the Georgia Institute of Technology, holding the Georgia Mining Association Early Career Professorship in the School of Civil and Environmental Engineering with courtesy appointments in Ocean Science and Engineering and the School of Earth and Atmospheric Sciences. Dr. Dai earned his Ph.D. from Georgia Tech in 2013 following ORISE postdoctoral fellowships at the National Energy Technology Laboratory (2013-2015). His educational background includes specialized training in geosystems engineering and energy-related subsurface processes. His research focuses on energy geotechnics and nature-inspired engineering, addressing critical challenges in energy sustainability and environmental protection through studies of geomechanics, granular dynamics, and porous media flow. Key applications include gas hydrate systems for energy recovery, waste-to-fuel conversion, and biomimetic solutions inspired by natural processes like rock-boring clams. Analysis of Dr. Dai's 2023-2025 publications reveals strong interdisciplinary integration of computational modeling (DEM, SPH), machine learning, and experimental techniques across energy geotechnics, granular material flow, and bio-inspired mechanisms. His work bridges petroleum engineering, environmental sustainability, and space exploration contexts. Dr. Dai has received numerous accolades recognizing his research, teaching, and service contributions: 2025: Early Career Researcher Award (USUCGER) 2024: Emerging Leaders Program (EVPR/Georgia Tech) 2023: Interdisciplinary Research Award and Woodruff Academic Leadership Fellows 2022: NSF Game Changer Academies and CREATE-X Faculty Fellowship 2020: NSF CAREER Award 2017: Bill Schutz Teaching Award and NETL Research Spotlight His Subsurface Processes Laboratory secures funding from DOE, NSF, NASA, and DOT for projects including $1M awards for waste-to-fuel conversion and methane clathrate research. Dr. Dai serves as Associate Editor for Journal of Geophysical Research: Solid Earth and leads ISSMGE's TC308 Energy Geotechnics Task Force while advising USGS and NETL programs. The laboratory conducts cutting-edge experimental and computational research on hydrate-bearing sediments, granular biomass flow, and bio-inspired geotechnical solutions, maintaining strong industry partnerships for real-world application of subsurface engineering innovations.
Dr. Mohamed Soliman is the William C. Miller Endowed Professor at the University of Houston’s Cullen College of Engineering, Department of Petroleum Engineering. He holds a Ph.D. in Petroleum Engineering from Stanford University, complemented by an M.S. and B.S. from Stanford and Cairo University respectively. His research focuses on hydraulic fracturing of unconventional reservoirs, waterless fracturing using shock waves, and advanced numerical simulation techniques. He has authored over 250 technical papers and holds 35 patents, with notable works on shale gas transport, dead oil viscosity modeling, and plasma stimulation technologies. Dr. Soliman is a Distinguished Member of the Society of Petroleum Engineers (SPE) and a Fellow of the National Academy of Inventors. He has received the Gulf Coast 2020 Distinguished Achievement Award for Petroleum Engineering Research. His work bridges theoretical models with practical applications, such as the development of machine learning tools for reservoir analysis and innovative methods for fracture closure detection using wavelet transforms. His teaching spans core petroleum engineering courses including PETR 1111 (Introduction to Petroleum Engineering), advanced production operations (PETR 6372), and well completion stimulation (PETR 5397). He actively mentors graduate students, with current advisees Ibrahim Eltaleb, M. Awad, and Fatmir Likframa. His research group collaborates on projects funded by industry and government agencies, focusing on topics like microwave-assisted heavy oil recovery and geothermal reservoir characterization. Dr. Soliman’s lab develops cutting-edge tools for analyzing fracturing pressure data and interwell connectivity through signal processing. Key collaborations involve experimental validation with institutions like the University of Houston’s Advanced Energy Research Laboratory. His recent work emphasizes sustainable energy solutions, including critiques of carbon capture limitations and innovative plasma-based stimulation techniques to enhance reservoir permeability without water use.
Natasa Skalko-Basnet is a Professor and Head of the Drug Transport and Delivery Research Group at the Department of Pharmacy, UiT The Arctic University of Norway. She specializes in advanced drug delivery systems, lipid-based formulations, and nanomedicine for localized therapies targeting infections and biofilms. Her work spans vaginal drug delivery, antimicrobial resistance solutions, and controlled release systems. Education: B. Pharm (1986), Faculty of Pharmacy and Biochemistry, University of Zagreb M.Sc. (1990), University of Zagreb PhD (1995), University of London University Habilitation (1999), University of Zagreb Research Interests: Development of liposomal hydrogels and nanocarriers for targeted antimicrobial therapy Biofilm disruption mechanisms and drug delivery strategies Optimization of vaginal and topical formulations for chronic infections Pharmaceutical characterization of nanomedicines using advanced imaging techniques Teaching: FAR 3041 Advanced Pharmaceutics and Biopharmaceutics FAR 3043 Advanced Drug Delivery Systems in Nanomedicine (Master’s) FAR 8043 Nanotechnology and Nanomedicine (PhD) Labs/Groups: Member of the Drug Transport and Delivery (DTD) Research Group and the Cell-Free In Vitro Permeability Models project.
Erdem Coleri is an Associate Professor at Oregon State University's College of Engineering, Department of Civil and Construction Engineering. He joined OSU in 2014 after postdoctoral work at the University of California Pavement Research Center. His research focuses on sustainable pavement materials, energy-efficient design, and infrastructure health monitoring using wireless sensor networks. He directs the OSU Asphalt Materials and Pavements (AMaP) Lab, emphasizing recycled materials and pavement sustainability. Education: Ph.D., Civil and Environmental Engineering (UC Davis, 2011); M.S. and B.S., Civil Engineering (Middle East Technical University, Turkey). Research interests include asphalt characterization, pavement management systems, and wireless sensor networks for infrastructure monitoring. Notable awards include the John and Jean Loosley Faculty Fellow (2015) and Oregon State University Teaching Excellence (2020). He advises students like David Covey and Aiman Mahmoud, focusing on tack coat performance and recycled materials. His lab develops technologies to reduce environmental impact and improve pavement longevity. Key projects include the AMaP Lab's work on permeable pavements, warm-mix asphalt, and energy-efficient designs. He collaborates with ODOT and agencies on field tests and sensor systems. Recent publications address balanced mix design, recycled materials, and fuel efficiency linked to pavement roughness.
Tiziana Vanorio is an Associate Professor in the Earth and Planetary Sciences Department at Stanford University, affiliated with the School of Sustainability. She leads the Rock Physics and Geomaterials Laboratory, focusing on integrating laboratory experiments with analytical techniques to study rock and geomaterial properties across scales. Her research emphasizes composite structures' influence on mechanical behavior, with applications in CO2 mineralization, sustainable cement, and energy transition technologies. She holds a courtesy appointment in Civil and Environmental Engineering. Her work explores novel processes for subsurface engineering, including enhancing CO2 reuse through accelerated mineralization and replicating natural cementation processes. Recent projects investigate hydrogen production mechanisms and fibrous nanostructures' role in material reinforcement. Vanorio's interdisciplinary approach bridges geophysics, materials science, and environmental engineering to address global challenges like resource efficiency and decarbonization. Her lab employs advanced methods such as deep-learning for seismic analysis, micro-CT imaging, and 3D printing of rock microstructures. Key contributions include studies on Campi Flegrei caldera dynamics, Chicxulub impact hydrothermal systems, and THCM processes in low-porosity rocks. These efforts aim to improve subsurface monitoring, carbon storage safety, and sustainable construction materials.