Jon Simon is the Joan Reinhart Professor and Professor of Applied Physics at Stanford University . He leads the Simon Lab , which explores the convergence of condensed matter physics , quantum optics , and quantum information science , focusing on creating synthetic materials from light and investigating topological and strongly correlated quantum systems. His research spans constructing photonic materials in quantum circuits, studying small quantum systems with strong correlations, and applying Hamiltonian engineering to realize exotic states of matter. The lab has achieved milestones like the first Mott insulator of photons and topologically insulating circuits . Collaborative projects with the Schuster Lab leverage superconducting quantum circuits for synthetic matter studies. Jon's students include Adam Shaw (PhD, now at Stony Brook) Lavanya Taneja (PhD, now at Atom Computing) Ruichao Ma (Postdoc, now faculty at Purdue) among others. The lab's recent publications focus on cavity arrays, hybrid quantum systems, and topological photonics. Research is supported by grants and affiliations with Stanford's Department of Applied Physics and interdisciplinary institutes.
University of California , Santa Barbara (UCSB)United States
Frank L. Brown is a Professor of Chemistry & Biochemistry at the University of California, Santa Barbara, with a joint appointment in Physics and the Biomolecular Sciences & Engineering (BMSE) program. His research focuses on theoretical and computational studies at the interface of physical chemistry and biophysics, particularly biomembrane dynamics and spectroscopy. Dr. Brown received his B.S. in Chemistry and B.A. in Applied Mathematics from UC Berkeley, followed by a Ph.D. in Physical Chemistry from MIT. He has held postdoctoral appointments at UC San Diego and the University of Chicago before joining UCSB in 2001. He is the recipient of prestigious awards including the Alfred P. Sloan Research Fellowship and the Presidential Early Career Award in Science and Engineering. His laboratory employs tools from statistical mechanics, hydrodynamics, and quantum mechanics to study biomembrane structure, dynamics, and interactions with embedded proteins. Key research areas include lipid bilayer fluctuations, membrane protein diffusion, and interpretation of spectroscopic techniques like single-molecule fluorescence and neutron spin echo. Dr. Brown has mentored numerous graduate students and postdoctoral researchers, with notable alumni including Brian Camley, Max Watson, and Golan Bel. His research is supported by grants from agencies such as the National Science Foundation and the Department of Energy. He directs the Brown Research Group, which collaborates with institutions like the CNSI Center for Scientific Computing. His work bridges computational modeling and experimental biophysics, advancing understanding of membrane systems in health and disease.
Michael McAlpine is a Professor in the Mechanical Engineering department at the University of Minnesota . He also holds affiliations with the Biomedical Engineering and Electrical and Computer Engineering departments. His research focuses on 3D printing functional materials & devices , Nanoscale inks , Biomedical devices , Bioelectronics , and Flexible Microsystems . Research Interests : 3D Printing, Biomedical Engineering, Nanotechnology, Flexible Electronics, Microfluidics Labs : ME 361/363 Contact : mcalpine@umn.edu , (612) 626-3303, ME 117 Recent Research Trends include 3D Printed Biomedical Devices , Flexible Electronics , and Bioprinting Applications . His work spans from Spinal Organoid Formation to Programmable Drug Release Capsules . Scientific Award : Circulation Research 2020 Best Manuscript Award
Massachusetts Institute of TechnologyUnited States
Nuno Loureiro is an Associate Professor at the Department of Nuclear Science and Engineering at MIT, with a secondary appointment in the Physics Department. He obtained his PhD in Physics from Imperial College London in 2005 and held postdoctoral positions at Princeton University and the UK’s Culham Centre for Fusion Energy before joining MIT in 2016. His research focuses on plasma physics , particularly theory and simulations of astrophysical and laboratory plasmas , including magnetic reconnection, turbulence, and kinetic effects. His work bridges classical plasma dynamics with emerging quantum computing applications. The 15 most recent publications highlight advancements in quantum algorithms for plasma simulations , magnetic reconnection mechanisms , and turbulence dynamics across relativistic and non-relativistic plasmas. Topics include plasmoid-mediated inverse energy transfer, data-driven fluid closures, and ion-acoustic instability impacts. 2015 Thomas H. Stix Award (American Physical Society) NSF CAREER Award
Dmitri N. Basov is the Higgins Professor of Physics at Columbia University, with a joint appointment as Professor of Physics at the University of California, San Diego. His research focuses on quantum materials, utilizing nano-optical techniques to investigate electronic phenomena and polaritonic systems. He leads the Basov Group at Columbia and has pioneered methods for imaging quantum materials at nanoscale resolutions. PhD in Physics, Lebedev Physics Institute (1991) Professor, Columbia University (2016–present) Professor, UC San Diego (2001–present) Postdoctoral Research, McMaster University (1992–1996) His work spans plasmonics , terahertz spectroscopy , and van der Waals heterostructures , with recent emphasis on polariton dynamics, superconductivity modulation, and moiré-driven electronic states. He employs cutting-edge tools like quantum scanning near-field optical microscopy (q-SNOM) and resonant inelastic X-ray scattering. Besides leading major grants such as the Gordon and Betty Moore Investigator award and Vannevar Bush Fellowship, Basov has received accolades like the National Academy of Sciences membership (2020), Ken Button Prize (2019), and Frank Isakson Prize (2012). His team explores novel quantum phases in 2D and topological materials.
University of California , Santa Barbara (UCSB)United States
Frank L. H. Brown is a Professor at the University of California, Santa Barbara with joint appointments in the Department of Physics and Department of Chemistry and Biochemistry. His research focuses on theoretical and computational approaches to understanding biomembrane dynamics and related biophysical phenomena, situated within the College of Letters and Science. Dr. Brown's research interests span the interface between physical chemistry and biophysics. He employs a variety of theoretical tools including statistical mechanics , hydrodynamics , elasticity theory , and quantum mechanics to study complex biological systems. His work particularly emphasizes the dynamics and structure of biomembranes and the interpretation of various spectroscopy experiments including single molecule fluorescence, neutron spin echo, and flicker spectroscopy. Analysis of his publication record reveals a consistent focus on computational modeling of lipid bilayers, membrane proteins, and related phenomena, with particular emphasis on developing novel theoretical frameworks for understanding membrane behavior across multiple scales. Dr. Brown leads an active research group that includes current members Ehsan Noruzifar (Postdoctoral Researcher) and Sean Cray (Graduate Student). His former group members include numerous successful scientists such as Grace Brannigan, Brian Camley, Lawrence Lin, and Max Watson who completed their graduate studies under his supervision, along with several postdoctoral researchers. His research has been supported by funding that enables theoretical and computational investigations of biomembrane systems. The Brown Research Group operates at the intersection of physics, chemistry, and biology, with facilities connected to the Biomolecular Sciences & Engineering Program and the California NanoSystems Institute (CNSI) at UCSB. Their work combines advanced computational techniques with theoretical physics to address fundamental questions about soft and living matter systems, particularly at biological interfaces.
Junfei Li is an Assistant Professor in the School of Mechanical Engineering at Purdue University. His research focuses on advanced acoustic technologies, including acoustic tweezers, acoustofluidics, metamaterials, and underwater communication systems. He specializes in multiphysics wave propagation, noise control, and energy harvesting. Li's work bridges fundamental science and engineering applications in biomedical devices, sustainable energy, and advanced materials. Research Interests: Acoustic tweezers for microscale manipulation Design of metamaterials for acoustic control Ultrasound and underwater communication systems Energy-efficient noise mitigation strategies His recent publications emphasize innovations in acoustic metasurfaces, nonreciprocal sound propagation, and biomedical acoustic applications. Li’s research has implications for improving medical imaging, energy sustainability, and next-generation acoustic devices. Awards & Recognition: None explicitly listed in the provided materials. Advising & Grants: No student advisees or grant information specified in the text.
Hsueh-Chia Chang is the Bayer Professor of Chemical Engineering in the Department of Chemical and Biomolecular Engineering at the University of Notre Dame's College of Engineering. He also holds a concurrent faculty position in the Department of Aerospace and Mechanical Engineering. As Principal Investigator of the Chang Lab, he leads cutting-edge research in microfluidic and nanofluidic technologies for biomedical applications. Prof. Chang received his B.S. in Chemical Engineering from Caltech in 1976, followed by M.S. and Ph.D. degrees in Chemical Engineering from Princeton University in 1977 and 1980, respectively. His academic journey has established him as a leader in the field of microfluidics and biosensing technologies. Chang's research focuses on developing low-cost liquid biopsy nanotechnologies for cancer screening and therapy management. His lab specializes in microfluidic and nanofluidic research coupled with electrokinetics, optics, plasmonics and acoustics for biosensing applications. Key research areas include Electrokinetics & Biosensing, Optics & Plasmonics, Nanoelectrokinetics, and Droplet Microfluidics. The Chang Lab has developed innovative platforms that can isolate and sort tumor cells, exosomes, microvesicles, lipoproteins, and stress granules from blood samples, then lyse these structures to release RNA/protein biomarkers for detection and quantification. His recent publications reveal a strong focus on extracellular vesicle diagnostics, cancer biomarker detection, and point-of-care diagnostic technologies. The research spans multiple disciplines including oncology, cardiology, and neurology, with applications for pancreatic, liver, breast, ovarian, and lung cancers as well as myocardial infarction diagnosis. Fellow of American Institute of Medical and Biological Engineering (2025) Provost Research Achievement Award, Notre Dame (2024) Fellow of the National Academy of Inventors (2020) Lifetime Achievement Award, American Electrophoresis Society (2019) Fellow of the American Physical Society (1997) Presidential Young Investigator Award, NSF (1985) Prof. Chang has advised over 50 PhD students and postdocs who have gone on to prominent positions in academia and industry. His lab has secured significant funding and has commercialized several technologies through startups like Aopia Biosciences, which launched NanoEx at ISEV 2024. The Chang Lab maintains active collaborations with medical researchers for validating their diagnostic platforms against various cancers and cardiac conditions.
Keith Zengel is an Assistant Professor in the Department of Sciences at the School of Sciences and Humanities. His work emphasizes interdisciplinary education in applied sciences, particularly blending biochemistry, biophysics, and physical chemistry. He advocates for programs that foster adaptability and innovation through cross-disciplinary collaboration. His research focuses on experimental and theoretical physics, including electromagnetism, quantum mechanics, and classical mechanics. He frequently contributes to academic journals, often editing or authoring monthly issues that highlight current trends in physics education and research. Dr. Zengel's research interests span a broad spectrum of physics disciplines, with a particular emphasis on practical experiments and foundational theories. Notable areas include eddy currents, uncertainty principles, and the application of Fourier transforms in quantum mechanics. His work often bridges theoretical concepts with real-world phenomena, such as the motion of objects under various physical forces and electromagnetic effects. His publications reflect a commitment to both pedagogy and cutting-edge research, with contributions ranging from experimental setups to historical analyses of scientific paradoxes. Despite no awards explicitly listed, his active role in academic publishing underscores his influence in shaping physics discourse.
Stephen Y. Chou is the Joseph C. Elgin Professor of Engineering and Professor of Electrical and Computer Engineering at Princeton University. He is affiliated with the Princeton Materials Institute (PMI) and leads the Nano, Meta, and Bio-Health Laboratory (NMBH Lab), previously known as the Nanostructures Lab. His work spans nanotechnology, bioengineering, and photonics, integrating interdisciplinary approaches to address challenges in health, electronics, and manufacturing. Ph.D., Massachusetts Institute of Technology, 1986 M.A., Physics, State University of New York at Stony Brook, 1982 B.S., Physics, University of Science and Technology of China, 1978 Chou's research focuses on nano-bioengineering for diagnostics and health, nanophotonics (meta-optics and subwavelength elements), and nanofabrication techniques. His work has revolutionized nanoimprint lithography, enabling breakthroughs in semiconductor devices, optical sensors, and biomedical tools. The NMBH Lab's innovations include ultra-sensitive biosensors (D2PA), the iMOST™ diagnostic platform, and foundational contributions to gate-all-around (GAA) transistors for sub-3 nm CMOS technology. His publications reflect advancements in plasmonic biosensors, organic solar cells, nanofluidics, and scalable nanoimprint methods. Key themes include nanoscale light manipulation, low-cost diagnostic systems, and quantum electronic devices. Member, National Academy of Engineering (2007) IEEE Cledo Brunetti Award (2004) IEEE Nanotechnology Pioneer Award (2014) Nanoimprint Pioneer Award (2015) Packard Fellow (1991) Fellow, IEEE (2000) Inductee, New Jersey High Tech Hall of Fame (2004) MIT Technology Review Emerging Technologies (2003, 2007) Chou has founded three companies (Nanonex, NanoOpto, Essenlix) and co-founded BioNano Genomics (NASDAQ: BNGO). His work bridges academic research and industrial impact, with over 700 publications (H-index 97) and 400 patents, influencing global nanotechnology and diagnostics. The NMBH Lab develops transformative technologies in nano-bioengineering, nanophotonics, and nanofabrication, emphasizing practical applications for healthcare and electronics.
California Institute of Technology (Caltech)United States
John C. Doyle is the Jean-Lou Chameau Professor of Control and Dynamical Systems, Electrical Engineering, and BioEngineering at the California Institute of Technology (Caltech), where he holds appointments in the Division of Engineering and Applied Science with primary affiliation in the Control and Dynamical Systems Department. His research bridges theoretical foundations with applications across biological, technological, medical, and ecological networks. He earned a BS and MS in Electrical Engineering from MIT (1977) and a PhD in Mathematics from UC Berkeley (1984), followed by consultancy at Honeywell Systems and Research Center (1976-1990). MIT: BS & MS in Electrical Engineering (1977) UC Berkeley: PhD in Mathematics (1984) Doyle's research centers on universal laws and architectures in complex systems, emphasizing robustness-efficiency tradeoffs, speed-accuracy tradeoffs (SATs), diversity-enabled sweet spots (DeSS), bowtie/hourglass structures, and evolvability. His work pioneers System Level Synthesis (SLS) for control systems with sparse, local, saturating, delayed, noisy, quantized, and distributed (SLSDNQD) components, integrating control theory, computation, communication, and machine learning to address challenges from neural networks to infrastructure resilience. Key concepts include virtualization, horizontal transfer, and virality in multiscale systems. Analysis of his publication trends reveals consistent interdisciplinary impact across neuroscience (brain connectivity modeling), systems biology (metabolic oscillations), network science (internet topology), and physics (turbulence, earthquakes), with recurring themes of robust-efficiency limits and architectural principles governing complex networks. His work demonstrates exceptional translation from abstract theory to practical tools like the Matlab Robust Control Toolbox and Systems Biology Markup Language (SBML). His scientific recognition includes: 1990 IEEE Baker Prize (ranked among top 10 most important mathematics papers 1981-1993) Three IEEE Automatic Control Transactions Awards (1998, 1999, 2021) ACM Sigcomm Paper Prize (2004) and Test of Time Award (2016) IEEE Control Systems Field Award (2004) Multiple early-career honors including IEEE Centennial Outstanding Young Engineer (1984) Doyle has mentored generations of students whose contributions include foundational software tools adopted globally. His research has secured sustained funding from NSF, NIH, and other agencies supporting theoretical advances in control frameworks and their applications to biomedical systems, network infrastructure, and environmental modeling. The SBML initiative exemplifies his group's impact in standardizing computational biology research. He leads a highly collaborative research ecosystem at Caltech that integrates engineers, biologists, neuroscientists, and computer scientists to develop universal principles for complex networks. Current efforts focus on translating theoretical insights into health technologies, resilient infrastructure, and climate-responsive systems through the application of robust-efficiency frameworks to emerging challenges in cyber-physical and biological domains.
Steven A. Corcelli is a Professor and Interim Dean of the College of Science at the University of Notre Dame, with a research focus on Theoretical Chemistry and Molecular Dynamics Simulations . His work bridges Physical Chemistry and Biochemistry , targeting Energy Applications and Biomolecular Binding Mechanisms . He leads the Computational Molecular Science & Engineering Laboratory (CoMSEL). Ph.D., Chemistry, Yale University (2001) Sc.B., Chemistry, Brown University (1997) Research interests span ionic liquids for Carbon Capture , aqueous electrolytes in battery technologies , and molecular binding processes in immunology and DNA interactions . His group employs GPU-accelerated simulations and weighted ensemble methods to uncover structural and dynamic motifs. Recent publications highlight trends in vibrational spectroscopy , TCR-MHC binding , and CO2 solvation mechanisms . Awards include the Thomas P. Madden Award (2020) , ACS Fellowship (2016) , and NSF CAREER Award (2009) . Staff: Erin Brossard (Ph.D.), Nell Karpinski, Shuang Wu, Noah Vasconez, Kaitlyn Handy, Isabel Thompson
Dr. Longji Cui is an Assistant Professor in the Thermo Fluid Sciences, Materials, and Micro/Nanoscale disciplines at the University of Colorado Boulder, affiliated with the Department of Mechanical Engineering within the College of Engineering and Applied Science. His laboratory focuses on high-precision instrumentation and computational techniques to explore energy transport, conversion, and dissipation at extreme scales, including scanning thermal microscopy, picowatt-resolution sensors, and nanophotonics. Lab Location: ECME 1B66F / ECME 108 Office Location: ECME 267B Research Interests: Dr. Cui's work spans thermal energy sciences, ultrahigh-resolution sensing, scanning probe microscopy, nano-optics, and quantum engineering. His interdisciplinary projects address critical challenges in sustainable energy systems, next-generation microelectronics, and advanced sensor technologies for high-performance applications. Notable contributions include innovations in thermophotovoltaic systems, molecular-scale thermal transport, and plasmonic light emission mechanisms. Recent publications emphasize near-field thermal radiation, quantized thermal transport in single-atom junctions, and enhanced energy conversion through nanoscale engineering. These studies bridge fundamental physics with practical applications in renewable energy and nanotechnology. Awards: 2025 CEAS Innovation & Entrepreneurship Fellow 2024 ASME Rising Star Award 2023 NSF CAREER Award 2023 CU Boulder Lab Venture Challenge Award His research group collaborates across disciplines to advance instrumentation for atomic-scale thermal measurements and develop novel materials for energy applications. Ongoing efforts include optimizing thermophotovoltaic devices and exploring hot-carrier dynamics in plasmonic systems.
California Institute of Technology (Caltech)United States
Peter Schroeder is the Shaler Arthur Hanisch Professor of Computer Science and Applied and Computational Mathematics at the California Institute of Technology (Caltech). He holds a B.S. from the Technical University of Berlin (1987), M.S. from MIT (1990), M.A. and Ph.D. from Princeton University (1992–1994). His academic roles at Caltech include Assistant Professor (1995–1998), Associate Professor (1998–2001), Professor (2001–2013), and Hanisch Professor since 2013. He served as Division Deputy Chair (2012–2015) and Acting Director of the Center for Advanced Computing Research (2013–2014). Schroeder’s research focuses on numerical algorithms for computer graphics, geometric modeling, and physical simulation. His work emphasizes Discrete Differential Geometry, rebuilding classical differential geometry for computational applications. Key areas include cloth deformation, fluid dynamics, and vortex simulations. Notable contributions include 'Schrödinger’s smoke' and fluid visualization techniques using Clebsch maps. His publications span ACM Transactions on Graphics and address topics like constrained Willmore surfaces, filament-based plasma models, and shape reconstruction from metrics. He has received the ACM Fellowship and Best Paper in Geometry Processing Award. His research often bridges computational mathematics with artistic and engineering challenges, such as simulating ink chandeliers and solar flares. Schroeder’s academic leadership includes co-founding the ACM SIGGRAPH Academy and mentoring students like James R. McLaughlin and Yanke Song, both recipients of the Henry Ford II Scholar Award.
Lenya Ryzhik is a Professor in the Department of Mathematics at Stanford University, specializing in analysis and partial differential equations with applications in various physical contexts. His research spans stochastic processes, wave propagation, and front dynamics in random media, with significant contributions to understanding reaction-diffusion systems and their applications in mathematical biology and physics. Professor Ryzhik's research interests focus on the mathematical analysis of partial differential equations arising in physical systems. His work particularly emphasizes stochastic PDEs, wave propagation in random media, front propagation in reaction-diffusion systems, and homogenization theory. He investigates how randomness and complex structures affect wave propagation, front speeds, and transport phenomena, with applications ranging from combustion theory to population dynamics and quantum mechanics. The publication record demonstrates a consistent focus on understanding propagation phenomena in complex environments. Ryzhik's research shows a progression from classical PDE analysis toward increasingly sophisticated stochastic frameworks, particularly examining high-dimensional systems and random media. His recent work has focused on KPZ fluctuations, random heat equations, and non-local reaction-diffusion models, revealing deep connections between probability theory and partial differential equations. Alfred P. Sloan Research Fellowship (2002-2004) AFOSR NSSEFF Fellowship (2010-2015) Ryzhik has advised graduate students including Alexandra Stavrianidi, and has secured substantial research funding throughout his career. His grant history includes multiple NSF awards (DMS-9971742, DMS-0203537, DMS-0604687, DMS-0908507, DMS-1311903), ONR funding (N00014-02-1-0089, N00014-04-1-0224), and FRG support for collaborative research on nonlinear evolution problems. He co-organized a Summer School and Workshop on 'Recent Advances in PDEs and Fluids' at Stanford in 2013. Ryzhik maintains an active research group collaborating with leading mathematicians worldwide, particularly with researchers at institutions like NYU, Chicago, and various European universities. His work frequently involves interdisciplinary collaborations bridging mathematics with physics and biology.