Professor Justin Chalker is the Matthew Flinders Professor and Research Leader at Flinders University 's College of Science and Engineering, affiliated with the Flinders Institute for NanoScale Science and Technology. He works at the intersection of organic chemistry, chemical biology, and materials science , focusing on sustainable chemistry solutions for environmental and technological challenges. Education: B.S. in Chemistry and B.A. in History/Philosophy of Science (University of Pittsburgh, 2006); D.Phil. in Chemistry (University of Oxford, supervised by Benjamin Davis) Career: Assistant Professor at University of Tulsa (2012-2015); Lecturer (2015) and Senior Lecturer (2017-present) at Flinders University His lab develops chemical tools for biological system interrogation and novel materials like sulfur-based polymers for mercury remediation, recyclable composites, and zinc-ion battery cathodes. Current projects include inverse vulcanization, waste valorization, and environmental applications of sustainable chemistry. His research aligns with UN Sustainable Development Goals for environmental protection and resource efficiency, particularly in material science (vulcanization, composite materials, polysulfides) and chemical biology (cysteine modification, protein chemistry). Key scientific recognitions: 2016 Tall Poppy Award, 2017 Dream Chemistry Award Finalist, Eureka Prize Finalist (2018), SA STEM Educator of the Year (2018), AMP Tomorrow Maker Award (2018) Prospective students can contact Dr. Chalker directly for Ph.D. and Honours opportunities. The lab website ( www.chalkerlab.com ) provides details on their research in sulfur chemistry, recyclable polymers, and chemical sustainability .
F. James Boerio is a Professor of Materials Science at the University of Cincinnati, affiliated with the School of Engineering Education. He holds a Ph.D. in Macromolecular Science from Case Western Reserve University, an M.S. in Macromolecular Science, and a B.S. in Physics from Case Institute of Technology. Education : Ph.D. (Case Western Reserve, 1971), M.S. (Case Western Reserve, 1968), B.S. (Case Institute of Technology, 1966). His research focuses on adhesion , plasma polymerization , and surface characterization using techniques like XPS, FTIR, VASE, and Raman spectroscopy. Key applications include rubber-to-metal bonding , corrosion inhibition , and nanoscale hybrid materials . His work has leveraged plasma reactors for in-situ characterization and large-volume plasma reactors for batch processing. Dr. Boerio’s recent publications emphasize plasma-polymerized films , interfacial analysis , and surface modification for adhesion and durability. He has explored carbon nanofiber actuators , breath figure films , and semiconductor/insulator interfaces , aligning with his expertise in materials science and engineering education. Scientific awards include: Outstanding Teacher by Engineering Tribunal (1983) Professor of the Year (2002-03) College of Engineering Research Award (1989) Dean’s Award for Educational Innovation (2001) Robert L. Patrick Fellow of The Adhesion Society (1997) Adhesion Society Award for Excellence (1999) He has secured significant grants from the National Science Foundation , Boeing , EPA , and others for projects on adhesion science , nanotechnology , and engineering education innovation . His leadership roles include Director of the School of Engineering Education and Interim Head of Materials Science and Engineering departments.
Michael Baldea is an Associate Professor in the Department of Chemical Engineering at the University of Texas at Austin . He holds a Ph.D. in Chemical Engineering from the University of Minnesota (2006), with prior degrees from 'Babeş-Bolyai' University in Romania (M.Sc. 2001, Diploma 2000). His research group develops theoretical and computational methods for Process and Energy Systems Engineering , focusing on integrated decision-making, performance optimization, and process intensification with industrial validation. Education: Ph.D., Chemical Engineering, University of Minnesota (2006) M.Sc., Interface Process Engineering, 'Babeş-Bolyai' University (2001) Diploma, Chemical Engineering, 'Babeş-Bolyai' University (2000) Research Thrusts: Integrated decision-making in chemical/energy supply chains Process performance monitoring and optimization Process integration and intensification Key applications include grid-responsive chemical plants, intensified distillation/column designs, and renewable energy integration for building systems. Scientific Awards: Frank A. Liddell, Jr. Fellowship NSF CAREER Award (2015-2020) Moncrief Grand Challenges Faculty Award (2014) AIChE Outstanding Young Researcher Award (2017) Implementation : His group has translated research into commercial tools through partnerships with industrial test beds and is working to integrate methods into commercial simulators. They explore predictive approaches for building energy management and strategic capital investment analysis in next-generation energy systems.
Martin Z. Bazant is the E. G. Roos (1944) Professor of Chemical Engineering and Professor of Mathematics at the Massachusetts Institute of Technology (MIT), holding the Digital Learning Officer role in the Department of Chemical Engineering. His research focuses on mathematical modeling of electrochemical systems, transport phenomena, and applied mathematics, with significant contributions to battery technology and electrochemical energy storage. He is affiliated with MIT’s Department of Mathematics and the MIT Energy Initiative (MITEI), leading initiatives like the Center for Battery Sustainability and D3BATT. Education: Ph.D. from Harvard University (1997), M.S. and B.S. from the University of Arizona (1993, 1992). His work bridges theory and application, addressing challenges in lithium-ion batteries, solid-state systems, and electrolyte dynamics. Notable achievements include pioneering studies on coupled ion-electron transfer mechanisms and phase separation in battery materials. He is an elected member of the National Academy of Engineering (2025) and a Fellow of the Electrochemical Society (2023). As an educator, he develops MOOCs on transport phenomena and contributes to digital learning initiatives. His research group explores advanced battery diagnostics, machine learning for materials science, and environmental applications of electrochemical processes. Key collaborations include startups like Lithios, Inc., and leadership roles in professional societies such as the International Electrokinetics Society.
Christoph F. Schmidt is the Hertha Sponer Distinguished Professor of Physics at Duke University with cross-appointments in the Thomas Lord Department of Mechanical Engineering and Materials Science, Biology, and Biomedical Engineering. He serves as Co-Director of the Duke Materials Initiative and leads an active research program at the intersection of physics and biology. His educational background includes a D.R. from the Technical University of Munich (Germany) in 1988. Schmidt has established himself as a leading researcher in biophysics through decades of innovative work. Professor Schmidt's research spans multiple scales of biological organization, from single molecules to whole organisms. His lab investigates cellular mechanics using advanced techniques including optical trapping, atomic force microscopy, and microrheology. A significant innovation from his group involves single-walled carbon nanotubes for high-bandwidth intracellular tracking. Current research focuses on cardiomyocyte mechanics, Drosophila tissue dynamics, and computational analysis of complex biological systems. His work on motor proteins like Eg5 and ncd has provided fundamental insights into cellular division mechanics. His recent publications (2021-2025) demonstrate increasing integration of computational approaches with experimental biophysics, particularly in analyzing cardiac tissue mechanics and Drosophila sensory systems. The work shows progression from fundamental biophysical measurements toward applications in understanding disease mechanisms and biological function. Professor Schmidt teaches several courses including PHYSICS 995 (Graduate Training Internship), PHYSICS 493 (Research Independent Study), PHYSICS 415 (Biophysics II), PHYSICS 174 (Introduction to Frontiers of Biophysics), and BIOLOGY 425 (Biophysics II). He has successfully mentored numerous graduate students to completion, including recent PhD graduates Dr. Mingru Li and Dr. Xiaoxuan Jian. The Schmidt Lab, part of Duke's Physics Department and the Duke Soft Matter Center, maintains state-of-the-art equipment for optical trapping, atomic force microscopy, and advanced light microscopy. The lab participates in the Triangle Soft Matter Workshop, fostering collaborations with researchers from Duke, UNC Chapel Hill, and NC State University. Current research directions include mechanical responses of suspended cells, tracking non-equilibrium cellular fluctuations, nuclear mechanics, and bacterial membrane mechanics under turgor pressure.
Christine Selhuber-Unkel is a Full Professor (W3) for Molecular Systems Engineering at the Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) at Heidelberg University. She serves as co-chair of the Executive Board of the Flagship Initiative 'Engineering Molecular Systems' and is a spokesperson for the 'Cellular Biophysics' section of the German Biophysical Society. Additionally, she is a member of the executive board of the Cluster of Excellence '3D Matter Made to Order'. Education: Studied physics at Heidelberg University (2000-2002) M.Sc. degree in Physics from Uppsala University (2003) PhD in Physics from Heidelberg University (biological adhesion on nanopatterned substrates) Professor Selhuber-Unkel's research focuses on functional interfaces and their interactions with biological systems, including responsive interfaces, micro-/nanostructured interfaces (including 2-photon laser printing), and biofunctionalized hydrogels. Her work specifically targets controlling cellular properties such as parasite migration, with potential applications in soft robotics and biomaterials. She also experimentally studies biophysical properties of cells including mechanosensing, cellular force generation, adhesion forces, and statistical properties of intracellular motion and migration. Her research group is involved in multiple projects related to parasite physics, including studies on Giardia adhesion, Plasmodium infected erythrocytes, and Toxoplasma gondii. Her recent publications demonstrate a strong focus on hydrogel engineering, cellular mechanics, and microfluidic systems for studying cell behavior. The research spans from fundamental biomaterials development to applications in ophthalmology, tissue engineering, and parasite mechanics. Scientific Awards: European Research Council Consolidator Grant (PHOTOMECH) European Research Council Starting Grant (CELLINSPIRED) Feodor Lynen Fellow for research stay at Cornell University Emmy Noether postdoctoral fellowship Otto Hahn Medal from the Max Planck Society Professor Selhuber-Unkel has received significant research funding, including multiple ERC grants and DFG funding. She previously served as spokesperson for the DFG research training group 'Materials for Brain' at Kiel University (2017-2020). Her research group maintains strong collaborations across multiple institutions focused on biophysical approaches to understanding cellular and parasite mechanics. Her laboratory develops advanced techniques including traction force microscopy, atomic force microscopy (AFM), and microengineered systems for studying cellular mechanics in confined environments. The group's work bridges materials science, biophysics, and parasitology to develop novel approaches for understanding and controlling cellular behavior.
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.
Angela Pitenis is an Associate Professor in the Department of Materials at the University of California, Santa Barbara (UCSB), within the College of Engineering. Her research focuses on interfacial phenomena in soft materials, particularly friction, adhesion, wear, and deformation of complex surfaces ranging from living cells to polymer nanocomposites. She employs advanced experimental techniques such as microscopy, spectroscopy, and interferometry to study these interfaces under extreme conditions and within buried environments. Her work has direct applications in healthcare, energy sustainability, and engineering design. Prof. Pitenis holds a Ph.D., M.Sc., and B.S. in Mechanical Engineering from the University of Florida. Her research group investigates biomaterials, hydrogel lubrication, and bioinspired materials, with recent studies addressing implant-associated inflammation, tumor cell dynamics in 3D microgels, and pH-responsive hydrogel friction. She is affiliated with the Materials Research Lab at UCSB and contributes to interdisciplinary projects at the intersection of materials science and biology. Notable research trends in her work include the development of biocompatible lubricious surfaces, understanding friction-induced biological responses, and designing smart materials with tunable mechanical properties. Her studies on photoresponsive hydrogels and superlubricious materials highlight innovations in responsive and adaptive material systems. Pitenis emphasizes in situ experimental methods and has pioneered techniques for analyzing dynamically evolving material interfaces. Her research also extends to marine biomaterials, such as the mechanical resilience of sessile tunicates, and explores applications in medical implants, bioreactors, and energy systems. While specific awards are not listed here, her contributions reflect a commitment to advancing soft matter tribology and biomaterials science.
Dane Morgan is a Professor in the Department of Materials Science & Engineering at the University of Wisconsin-Madison, College of Engineering. His research focuses on computational materials science for materials design, including ab initio electronic structure modeling, multiscale methods, and machine learning applications in materials discovery. His work spans nuclear materials, battery and fuel cell electrodes, and electronic materials. Education : PhD, 1998, University of California, Berkeley MS, 1994, University of California, Berkeley BA, 1992, Swarthmore College Research Interests : Computational materials science, ab initio methods for electronic structure and thermokinetics, machine learning for materials discovery, electrochemical systems modeling, and applications in nuclear materials, batteries, and electronic materials. His work integrates advanced computational techniques with experimental validation. Scientific Awards : 2024 APL Materials, Editors Pick 2023 Microscopy and Microanalysis Best Paper Award (Instrumentation and Software category) 2023 IEEE Transactions on Plasma Science Best Paper Award 2023 Kellet Mid-Career Award 2015 TMS Materials Genome Initiative Ambassador 2006 3M Technical Nontenured Faculty Grant
Prof. Veronika Somoza is a leading academic in Nutritional Systems Biology, currently affiliated with the University of Vienna and Technical University of Munich (TUM). She holds a professorship in Molecular Food Science and has led key research groups such as the Institute of Physiological Chemistry and the Christian Doppler Laboratory for Bioactive Aromatics. Her career includes roles at institutions like the German Research Institute for Food Chemistry (Garching) and the University of Wisconsin-Madison. Education: Diplom (Justus Liebig University Giessen, 1991), PhD (University of Vienna, 1995), Habilitation (Kiel University, 2002) Research Focus: Bioactive food compounds, flavor chemistry, taste receptor signaling, and gastrointestinal physiology Her work bridges food science and human health, particularly in understanding how food ingredients influence digestion, inflammation, and disease. Notable contributions include discoveries on bitter peptide effects on gastric acid secretion and flavor perception modulation. Awards: FEMA Excellence in Flavor Science (2016), ACS AGFD Fellow (2020), Hans Adolf Krebs Prize (2004) Prof. Somoza has pioneered methodologies in atomic force microscopy for foodborne virus detection and developed bitterness-masking compounds for pharmaceuticals. Her interdisciplinary approach integrates nanobiophysics with nutrition to advance functional food design and clinical applications.
Ovijit Chaudhuri is an Associate Professor of Mechanical Engineering at Stanford University, with a courtesy appointment in Bioengineering. He leads research at the interface of mechanics and biology, focusing on how cellular and extracellular mechanical properties influence biological processes like cancer progression and tissue formation. His work employs advanced tools such as atomic force microscopy and 3D cell culture systems. Education: Ph.D., University of California, Berkeley/San Francisco (Bioengineering, 2009) B.S., University of California, Berkeley (Engineering Physics, 2003) Postdoctoral Fellow, Harvard University (Biomaterials, 2013) Research Interests: His lab explores molecular mechanisms behind cellular mechanics, extracellular matrix dynamics, and how mechanical cues regulate cell behavior. Key areas include cancer metastasis, mechanotransduction, and engineered biomaterials for 3D cell culture. Publications Trends: Recent work emphasizes viscoelastic hydrogels, matrix mechanics in cancer progression, and mechanistic insights into cell migration. Over 50 publications since 2015 highlight interdisciplinary approaches in biomaterials and mechanobiology. Awards: Not explicitly listed in provided materials. Advising & Labs: No specific advisee names listed, but his lab focuses on collaborative projects in mechano-biology. Active in developing biomaterial systems for drug discovery and tissue engineering applications. Labs/Teams: Leads the Chaudhuri Lab at Stanford, which integrates engineering principles with biological systems to address complex disease mechanisms and therapeutic strategies.
Jun Liu is an Assistant Professor in the Department of Mechanical and Aerospace Engineering at the School of Engineering and Applied Sciences, University at Buffalo. His research focuses on advanced energy materials, nano/micro-mechanics, and self-powered systems, with applications in triboelectric energy harvesting and scanning probe microscopy. Education: PhD, Materials Engineering, University of Alberta (2018) MS, Materials Science, Shanghai University (2015) BE, Materials Science and Engineering, Nanchang University (2012) Research Interests: Development of tribovoltaic and triboelectric systems for self-powered electronics Mechanical energy harvesting via dynamic heterojunctions and Schottky contacts 3D-printed hydrogel structures for energy absorption and flexible electronics Nanoscale characterization using atomic force microscopy Design of nanocomposite sensors and catalytic materials Publication Trends: His work emphasizes triboelectricity, nanoscale energy conversion, and sustainable materials. Recent articles explore bionic tactile sensing, tunable hydrogels, and quantum dynamics in sliding interfaces. Awards: SONY Faculty Innovation Award (2021) Nature Springer MINE Young Scientist Award (2020) International Contest of Applications in Nano/Micro Technology Prize (2013) Laboratory: Advanced Energy Materials and Nanomechanics Lab at University at Buffalo.
Angela Kou is an Assistant Professor in the Department of Physics at the University of Illinois at Urbana-Champaign, specializing in the intersection of quantum information science and condensed matter physics. Her laboratory develops novel superconducting circuit elements and qubits, while also utilizing superconducting circuits to investigate topological materials with potential applications in quantum computing. She actively seeks postdoctoral researchers and graduate students to explore superconducting qubit engineering and quantum material sensing. Her research integrates quantum information , topological materials , and superconducting circuit design . Recent publications demonstrate expertise in fluxonium qubit control , quantum dot Josephson junctions , and parafermion zero modes in exotic heterostructures. She contributes to advancing cryogen-free dilution refrigerator technology for scanning probe microscopy applications. Current research trends focus on quantum coherence optimization , phase-slip qubit operation , and vibration mitigation in cryogenic systems. Her work receives support from the Air Force Office of Scientific Research, Army Research Office, IBM-Illinois Discovery Accelerator Institute, and the National Science Foundation. Collaborations span multiple institutions, with key partnerships at Stanford University and SLAC National Accelerator Laboratory. Her technical contributions include microwave impedance microscopy , scanning single-electron transistor measurements , and vibration analysis for quantum device stability.
Georg Fantner is an Associate Professor at the Swiss Federal Institute of Technology Lausanne (EPFL) with dual appointments in the School of Engineering (STI) within the Institute of Bioengineering and the School of Life Sciences (SV) for teaching. He directs the Laboratory for Bio- and Nano-Instrumentation (LBNI) and holds leadership roles including President of the Open Science Strategic Committee and the Association des Professeurs de l'EPFL. Research Focus: Bioinstrumentation, Nanotechnology, Scanning Probe Microscopy, and Metrology Teaching: Structural Mechanics for Life Sciences, Metrology, and Metrology Practicals His research pioneers advanced instrumentation for nanoscale characterization, emphasizing data-driven approaches to enhance microscopy techniques. Recent work integrates deep learning with scanning probe microscopy for real-time biological imaging and develops novel MEMS devices for fluid-compatible nanoscale manipulation. Key innovations include hermetically sealed sample chambers for pathogen studies and deterministic nanotopography engineering. Professor Fantner actively mentors 7 current PhD students and has supervised 14 graduates. His laboratory fosters interdisciplinary collaboration across engineering, physics, and life sciences to advance nanoscale measurement technologies and instrumentation development.
F. Levent Degertekin is a Regents' Entrepreneur and the George W. Woodruff Chair in Mechanical Systems and Professor at the George W. Woodruff School of Mechanical Engineering at Georgia Institute of Technology. His office is located in Love Building, room 311B, and his contact email is levent.degertekin@me.gatech.edu. Dr. Degertekin's academic journey includes a Ph.D. in Electrical Engineering from Stanford University (1997), an M.S. in Electrical Engineering from Bilkent University, Turkey (1991), and a B.S. in Electrical Engineering from Middle East Technical University, Turkey (1989). Dr. Degertekin's research focuses on micromachined ultrasonic devices and systems for medical applications, particularly in intravascular ultrasound imaging, therapeutic ultrasound, and acousto-optical sensors for MRI. His work spans from fundamental research on novel transduction methods to complete catheter-based imaging systems close to commercialization. He has made significant contributions to capacitive micromachined ultrasonic transducers (CMUTs), developing diffraction grating based optomechanical sensing methods now commercialized by Silicon Audio, novel atomic force microscopy imaging probes, and micromachined ultrasonic ejector structures for cell transfection commercialized by OpenCell Technologies. His research integrates acoustics, optics, and their combinations for various medical applications, utilizing conventional microfabrication (MEMS) and integrated circuit technologies. The Degertekin lab exposes students to applied physics, electrical, mechanical and biomedical engineering, biology, and biomimetic systems, providing them with thorough theoretical and experimental education in acoustics and optics while learning interdisciplinary research. Dr. Degertekin's work has received significant media attention, including coverage in IEEE Spectrum, Wired Magazine, The New York Times, and Fox Business News, highlighting innovations such as handheld ultrasound probes, MRI safety sensors, and minimally invasive cardiac imaging technologies. IEEE Fellow for 'Contributions to micromachined ultrasonic and optomechanical transducers and systems,' 2022 IEEE UFFC Society Inaugural Carl Hellmuth Hertz Ultrasonic Achievement Award, 2014 George W. Woodruff School Outstanding Achievement in Commercialization and Entrepreneurship Award, 2024 National Science Foundation CAREER Award, 2004-2009 Whitaker Foundation Biomedical Engineering Research Grant Award, 2001 66 US and 6 International Patents Dr. Degertekin has mentored numerous students who have gone on to make significant contributions in the field. Several of his students have received IEEE Ultrasonics Symposium Best Student Paper Awards, including Jeff McLean (2003), Sheng-Yu Peng (2006), Rasim O. Guldiken (2005 and 2007), and Toby Xu (2014). His research has been supported by various grants including the NSF CAREER Award and Whitaker Foundation grant. His work has led to multiple commercial ventures including Silicon Audio and OpenCell Technologies. The Degertekin Group at Georgia Tech focuses on transducers and systems for medical imaging and sensing, with current projects including capacitive parametric transducers, acousto-optic sensors for MRI, novel transducer methods for focused ultrasound in the brain, microsystems for intravascular and intracardiac ultrasound imaging, and CMUT-on-CMOS systems for IVUS imaging.