Özüm Asirim is a Researcher at the Technical University of Munich (TUM) under the Associate Professorship of Computational Photonics led by Prof. Christian Jirauschek. Her work focuses on computational photonics , quantum optics , and nonlinear optical phenomena , particularly in micro-resonators and semiconductor devices. Education: Ph.D. in Electrical Engineering from Middle East Technical University (Ankara, Turkey). Research spans optical parametric amplification , Fourier domain mode-locked lasers , self-phase modulation , and machine learning applications in photonics . Her studies include optimizing gain factors, enhancing harmonic generation, and modeling supercontinuum sources via carrier injection. Recent publications (2019–2023) highlight interdisciplinary approaches, merging photonics with computational finance and nonlinear dynamics . She contributes to EU Project QOMBS and teaches courses like Python for Engineering Data Analysis and Quantum Engineering and Machine Learning seminars. Collaborations include Prof. Christian Jirauschek (TUM), Prof. Mustafa Kuzuoğlu (Middle East Technical University), and teams in computational photonics and quantum optics. Her work impacts semiconductor physics , laser technology , and adaptive optical systems .
Boris Murmann is Professor at Stanford University, specializing in integrated circuit design, mixed-signal computing, and energy-efficient AI hardware. His research advances neural interface technologies, analog design automation, and tinyML systems. Recent work develops ultra-low-power neural recording ICs for brain-computer interfaces, RRAM-based memory systems, and open-source semiconductor design frameworks. Publications demonstrate innovations in compressive sensing for neural data, hardware-algorithm co-design, and reinforcement learning for analog circuit synthesis. Significant contributions include Medusa (TinyML processor), EMBER (RRAM macro), and methodologies for coarsely-quantized computer vision and analog design automation.
David A. Muller serves as the Samuel B. Eckert Professor of Engineering in the School of Applied and Engineering Physics at Cornell University and co-directs the Kavli Institute at Cornell for Nanoscale Science. His research group focuses on developing quantitative electron microscopy methods to understand materials properties at the atomic scale, with particular emphasis on sustainable energy applications and quantum materials. Muller's laboratory utilizes some of the world's highest resolution electron microscopes housed in specially designed, environmentally isolated rooms. Muller received his undergraduate education at the University of Sydney and earned his Ph.D. in Physics from Cornell University in 1996. Between 1997 and 2003, he was a member of the technical staff at Bell Laboratories, where he applied his expertise in imaging single atoms and atomic-scale spectroscopy to determine the physical limits of transistor miniaturization. In 2003, he returned to Cornell as a faculty member, where he has since established himself as a leader in advanced electron microscopy techniques. Muller's research spans multiple frontiers in materials science, with particular focus on understanding how electronic-structure changes at the atomic scale control macroscopic behavior in diverse systems like turbine blades, fuel cells, and transistors. His current work emphasizes the physics of renewable energy materials, atomic-scale control of materials to create electronic phases that cannot exist in bulk, and developing hardware and algorithms for 'big data' acquisition from high-bandwidth pixelated electron microscope detectors. His group's work bridges theoretical physics and experimental techniques, requiring researchers who can think in both real and reciprocal space while considering both fundamental principles and practical applications. Analysis of Muller's recent publications reveals a strong trend toward advancing electron ptychography and 4D-STEM techniques for atomic-scale imaging. His group has pioneered methods for 3D atomic-scale metrology, strain mapping, and imaging of radiation-sensitive materials. The research spans applications from semiconductor technology to quantum materials and energy storage systems, demonstrating the versatility of his microscopy approaches across multiple scientific domains. Top 100 Young Innovator by Tech Review Magazine (2003) Burton Medal from Microscopy Society of America (2006) Ernst Ruska Prize of German Society for Electron Microscopy (2021) John Cowley Medal from International Federation of Societies for Microscopy (2023) Fellow of American Physical Society Fellow of American Association for the Advancement of Science Fellow of Microscopy Society of America Muller has mentored an extensive group of students and postdocs who have gone on to successful careers in academia and industry. His former students hold faculty positions at institutions including Rice University, University of Southern California, Seoul National University, Colorado School of Mines, and the University of Michigan, among others. His research has been supported by substantial grants, including a $22.5M NSF grant that accelerates materials discovery. The Muller lab maintains close collaborations with the Kavli Institute at Cornell and PARADIM (Platform for the Accelerated Realization, Analysis, and Discovery of Interface Materials). The Muller lab operates at the forefront of electron microscopy, housing specialized instrumentation including high-resolution transmission electron microscopes in environmentally isolated rooms. The group collaborates extensively with other research teams at Cornell and worldwide, focusing on understanding materials atom by atom. Current research directions include applying machine learning to electron microscopy data analysis, developing cryogenic techniques for studying low-melting-point materials, and exploring quantum phenomena in engineered materials systems.
Erhan Kutanoglu is an Associate Professor in the Operations Research and Industrial Engineering Graduate Program at The University of Texas at Austin's Cockrell School of Engineering. He joined the faculty in 2002 and received a National Science Foundation Early Career Development Award that year. His research focuses on integrating predictive models with stochastic optimization to address challenges in disaster resilience, humanitarian logistics, and semiconductor manufacturing. Key areas include hurricane mitigation, power grid resilience, and supply chain optimization. Education: PhD in Industrial Engineering from Lehigh University (1999). Research Interests: Applied operations research for manufacturing/service logistics, disaster resilience decision-making, semiconductor cycle time optimization, and inventory modeling. Recent work emphasizes hurricane evacuation planning, flood mitigation for critical infrastructure, and equity considerations in grid resilience. Publications: Over 50 peer-reviewed articles in journals like IEEE Transactions, European Journal of Operational Research, and Annals of Operations Research. Notable work includes models for power grid resilience, patient evacuation strategies, and semiconductor manufacturing efficiency. Awards: NSF CAREER Award (2002), recognized for contributions to service logistics optimization and stochastic modeling. Advising & Grants: Advised graduate students on projects involving hurricane preparedness and semiconductor scheduling. Active in collaborative research with industry partners to streamline manufacturing processes and enhance disaster response systems. Labs/Teams: Engaged with the Cockrell School's infrastructure resilience research groups and interdisciplinary teams addressing climate adaptation challenges.
Natalie Banerji is a Full Professor in the Department of Chemistry and Biochemistry at the University of Bern, Switzerland. She previously held positions as Associate Professor (2015–2017) and Assistant Professor (2014–2015) at the University of Fribourg, and was an Ambizione Fellow at EPF Lausanne (2011–2014). Her research focuses on organic electronics, photovoltaic materials, and charge transport dynamics in conjugated polymers and perovskites. She has pioneered studies on electrochemical doping mechanisms, materials engineering for organic electrochemical transistors, and the interplay between material structure and optoelectronic properties. Education: PhD in Physical Chemistry (2009, University of Geneva), Diploma in Chemistry (2003, University of Geneva). Her work integrates advanced spectroscopic techniques like terahertz conductivity, transient absorption, and sum frequency generation to explore ultrafast charge dynamics. Key areas include optimizing polymer side-chain engineering for enhanced device stability and performance, and understanding charge separation in organic solar cells. Her recent articles emphasize advances in flexible electronics, biocompatible materials for bioelectronic devices, and perovskite-based optoelectronics. She has been funded by SNSF grants and collaborations with institutions like UCSB and EPFL.
Jung Han is the William A. Norton Professor of Electrical & Computer Engineering at Yale University, affiliated with the School of Engineering & Applied Science. He holds a Ph.D. from Purdue University and leads the Optoelectronics Materials and Devices Group, focusing on interdisciplinary research in III-nitride semiconductors, optoelectronics, and power electronics. His work bridges fundamental materials science with practical applications in solid-state lighting, energy harvesting, and next-generation electronics. Research interests include wide-bandgap semiconductor materials (e.g., GaN), nanoscale device fabrication, and epitaxial growth techniques. He pioneered nanoporous GaN distributed Bragg reflectors (DBRs) for high-efficiency LEDs and lasers, as well as selective-area growth methods for power electronics. His lab explores green energy technologies, flexible electronics, and hybrid organic-inorganic semiconductors. Publications emphasize advancements in GaN-based vertical-cavity surface-emitting lasers (VCSELs), SWIR detectors, and micro-LED displays. Recent work addresses challenges in defect control, scalability of III-nitride devices, and integration with emerging materials. His group collaborates across engineering, applied physics, and chemistry to advance sustainable energy and high-performance optoelectronics. Notable contributions include wafer-level integrated white-LEDs with quantum dots, damage-free in-situ GaN etching via TBCl, and stacking-fault-free GaN growth on foreign substrates. His research has been recognized in high-impact journals like Advanced Materials and Applied Physics Letters .
Mykola Pechenizkiy is a Full Professor at the Department of Mathematics and Computer Science at Eindhoven University of Technology (TU/e), holding the Data Mining Chair. He also serves as an Adjunct Professor in Data Mining for Industrial Applications at the University of Jyväskylä. His research focuses on predictive analytics, data mining, and responsible AI, addressing real-world challenges in industry, healthcare, and education. He leads the Customer Journey research program at the Data Science Center Eindhoven, emphasizing ethical and transparent analytics. Academically, he holds a PhD from the University of Jyväskylä (2005) and has held visiting researcher positions at institutions like Columbia University and NYU. He has co-authored over 300 peer-reviewed publications and serves on editorial boards and committees for leading conferences (e.g., AAAI, IJCAI). He is the President of the International Educational Data Mining Society (IEDMS). His research interests include concept drift adaptation, sparsity techniques in neural networks, and fairness-aware AI. He has led projects such as the TKI PPS KPN Smart Two initiative and collaborates with industries like ASML, Philips, and Rabobank. His work contributes to UN SDGs, particularly in sustainable development through AI-driven solutions. Awards: Best Demo Paper Award (IEEE ICDE 2023), Best Paper Awards (ALA 2022, LoG 2022), and SensorKDD 2009 recognition. Grants/Projects: Active projects include TKI PPS KPN Smart Two (2019–2025) and Smart One W&I TKI KPN Flagship (2018–2022). Labs/Teams: Affiliated with EAISI Health, SIKS Scientific Board, and the University of Waikato’s AI Institute.
Na Young Kim is an Associate Professor in the Department of Electrical and Computer Engineering at the University of Waterloo with affiliations at the Institute for Quantum Computing (IQC) and Waterloo Institute for Nanotechnology. She holds cross-appointments in the Departments of Physics and Astronomy and Chemistry. Her research focuses on developing large-scale quantum processors using novel materials and advanced technologies, including semiconductor quantum processors and multi-functional nanoscale devices. Dr. Kim leads the Quantum Innovation (QuIN) laboratory, pioneering projects in planar architecture design for quantum devices integrating electrical, optical, thermal, and mechanical functionalities. Prior to academia, she worked at Apple Inc. on small display technologies. She earned a BS in Physics from Seoul National University and a PhD in Applied Physics from Stanford University, where she specialized in mesoscopic transport in nanostructures. Her postdoctoral work expanded into quantum optics and nanophotonics through collaborations with international researchers. Current teaching includes courses on quantum mechanics, quantum computing algorithms, quantum information processing devices, and photonic systems. She actively supervises graduate students in quantum technology development and is accepting new applications. Research activities span quantum artificial intelligence, quantum security protocols, and nanotechnology applications. Her work bridges theoretical frameworks with experimental implementations in solid-state quantum systems.
James S. Speck is the Seoul Viosys Professor of Solid State Lighting in the Department of Materials at the University of California, Santa Barbara (UCSB), within the College of Engineering. His research focuses on the materials science of wide bandgap semiconductors such as GaN and β-Ga₂O₃, emphasizing epitaxial growth, defect engineering, and device applications. He holds over 725 publications and has co-founded Soraa, a company commercializing GaN-based lighting technologies. Education: Sc.D. in Materials Science (MIT), S.M. in Metallurgy (MIT), B.Sc.Eng (University of Michigan). Research Interests: GaN-based semiconductors, nitride materials, epitaxial growth mechanisms, nonpolar/semipolar GaN, and β-Ga₂O₃. His work addresses threading dislocations, defect dynamics, and optoelectronic device performance. Awards: IEEE Photonics Society Aron Kressel Award, APS Fellowship, MRS Fellowship, and multiple best paper awards. Key Contributions: Pioneered MBE growth of GaN, developed V-defect engineering for LEDs, and advanced β-Ga₂O₃ research. Collaborates on Soraa’s high-brightness LED technologies. Lab/Teams: The Speck Group studies GaN heterostructures, defect mitigation, and wide bandgap semiconductor applications. Recent work includes V-defect-controlled LEDs and β-Ga₂O₃ etching techniques.
Dr. Hongxing Jiang is a Professor at the Whitacre College of Engineering, Texas Tech University, affiliated with the Department of Electrical & Computer Engineering. He holds the Edward E. Whitacre Jr. Chair and co-directs the Center for Nanophotonics. PhD in Physics, Syracuse University (1986) MS in Physics, Syracuse University (1983) BS in Physics, Fudan University (1981) His research focuses on III-Nitride semiconductors (BN, AlN, GaN, InN) for optoelectronics , photonics , and radiation detection . Key areas include solid-state lighting , energy-conversion devices , MOCVD growth , and micro-emitter arrays . Recent publications highlight advancements in h-BN quasi-bulk crystals , fast neutron detectors , and wide bandgap materials . Themes span crystal growth optimization , doping techniques , and optical characterization . National Academy of Inventors Fellow (2018) American Association for the Advancement of Science Fellow (2016) International Society for Optics and Photonics Fellow (2015) Optica Fellow (2014) American Physical Society Fellow (2010) China-U.S. Physics Examination and Application Fellow (1981) As co-director of the Center for Nanophotonics, Jiang leads research in semiconductor materials for high-energy lasers and neutron detection , emphasizing scalable growth methods like hydride vapor-phase epitaxy .
John M. Dallesasse is the Gregory E. Stillman Professor of Electrical and Computer Engineering at the University of Illinois at Urbana-Champaign, where he also serves as Associate Dean for Facilities and Capital Planning. He holds dual roles in academia and industry leadership, with prior experience as CTO, Vice President, and co-founder of Skorpios Technologies. His expertise spans optoelectronics, semiconductor materials, and photonic integration. Dallesasse earned his B.S., M.S., and Ph.D. from UIUC ECE in 1985, 1987, and 1991, respectively. His research focuses on III-V semiconductors, heterogeneous integration, quantum cascade lasers, and silicon photonics. He has pioneered innovations like III-V oxidation and the transistor-injected quantum cascade laser. Education: Ph.D., Electrical and Computer Engineering, UIUC, 1991 M.S., Electrical and Computer Engineering, UIUC, 1987 B.S., Electrical and Computer Engineering, UIUC, 1985 Research Interests: Compound semiconductor materials and devices Heterogeneous integration and wafer bonding Quantum cascade lasers and transistor lasers Photonic integration and silicon photonics III-Nitride devices and optoelectronics Awards: IEEE Fellow (2015) Optica Fellow (2013) Dean’s Award for Excellence in Research (2016) Advising and Labs: Leads the Advanced Semiconductor Device and Integration Laboratory Mentors undergraduate researchers in semiconductor innovation and photonics
Ye (Sarah) Sun is an Associate Professor in the Department of Mechanical Engineering at the University of Virginia (UVA), part of the School of Engineering and Applied Science. She joined UVA in 2021 after serving as an Associate Professor at Michigan Technological University. Her work focuses on wearable sensors, robotics, smart health systems, and cyber-physical systems. She leads the WEARLab research group. Education: Ph.D. in Electrical Engineering from Case Western Reserve University (2021), B.S. in Instrumentation Engineering from Tianjin University (not specified). Research interests include wearable electronics, health monitoring, and human-technology interaction. Her interdisciplinary approach integrates engineering innovations with healthcare applications. Notable projects involve self-powered triboelectric sensors and optical fiber-based health monitoring systems. Recent publications highlight advancements in photodiode technologies for high-frequency applications, including millimeter-wave generation and photonic integrated circuits. Awards include the NSF CAREER Award (2018) and NSF BRITE Award (2022). She has organized major conferences and holds editorial roles in health technology journals. Grants include NSF funding for cyber-physical systems and smart health initiatives. Her lab collaborates on projects involving wearable robotics and connected health solutions, with a focus on real-world applications in healthcare and IoT.
Mervi Paulasto-Kröckel is a Professor in the Department of Electrical Engineering and Automation at Aalto University, specializing in Electronics Integration and Reliability. With a doctoral degree in Engineering and Technology from Helsinki University of Technology (1995) and a Master's degree from the same institution (1990), her work focuses on microelectronics packaging, MEMS, and sustainable electronic manufacturing. Doctoral Degree: Engineering and Technology, Helsinki University of Technology (1995) Master's Degree: Engineering and Technology, Helsinki University of Technology (1990) Her research explores advanced packaging techniques like SLID bonding, reliability of microbumps, and thermally conductive materials. Recent work includes buried aluminum nitride for silicon-on-insulator and fatigue crack analysis in IGBT modules. Her publications emphasize low-temperature processes, interdiffusion, and MEMS reliability. Awards include the JVST A Best ALD Paper Award (2021) and a Best paper award (2000). She leads projects like PowerizeD and 3DPiezoMems, focusing on digitalization and 3D MEMS development. Best paper award (2000) JVST A Best ALD Paper Award (2021)
Professor David J. Thomson is a Professorial Fellow in the Optoelectronics Research Centre (ORC) at the University of Southampton, holding a prestigious Royal Society University Research Fellowship. He pioneers photonics research for computing applications and LIDAR systems, commanding over £10 million in research funding and leading a 12-member team focused on novel photonic device development and electronic integration. Thomson's research centers on silicon photonics and optical computing, with critical advancements in high-speed optical modulators, photonic integrated circuits, and LIDAR technologies. His work drives innovations in programmable photonics using phase-change materials and the co-integration of photonic and electronic systems, enabling breakthroughs in energy-efficient data communication and next-generation computing architectures. Recent publications (2024-2025) reveal a dominant focus on silicon photonics for ultra-high-speed optical interconnects, featuring programmable circuits with Sb2Se3 phase-change materials, 224 Gbaud transmitters, and MOSCAP ring modulators with sub-5nm insulators. These works collectively address bandwidth and energy challenges in data centers and high-performance computing through monolithic integration and novel material systems. Scientific Awards: Royal Society University Research Fellowship Thomson actively supervises eight PhD students across the ORC and Department of Electronics and Electrical Engineering, while managing substantial grants exceeding £10 million from the Royal Society, EPSRC, Horizon Europe, and Huawei Technologies. His projects include DOLORES (Digital Optical Computing Platform), Tunnel Epitaxy of III-V on Silicon, and PIXEurope, targeting revolutionary photonic integration for neural networks and communications. He leads a specialized research team within the ORC's state-of-the-art facilities, focusing on photonic device design, fabrication, and characterization. This group collaborates on major European initiatives like Horizon Europe's DOLORES and PIXEurope, advancing silicon photonic platforms for optical computing and LIDAR applications.
Daniel Vanmaekelbergh is a Professor in the Department of Chemistry at Utrecht University, where he leads research in the Condensed Matter and Interfaces group within the Debye Institute for Nanomaterials Science. His academic career spans over two decades with continuous contributions to nanomaterials science and semiconductor physics. Professor Vanmaekelbergh's research focuses on the fundamental properties of semiconductor nanocrystals, quantum dots, and artificial electronic lattices. His work bridges theoretical and experimental approaches to investigate electron transport, quantum confinement effects, and the optical properties of nanoscale materials. He has made significant contributions to understanding the formation mechanisms of nanocrystal superlattices, the electronic structure of artificial honeycomb lattices, and the dynamics of excitons in confined systems. His research group, known as the Vanmaekelbergh Lab, employs advanced techniques including scanning tunneling spectroscopy, electron microscopy, and optical spectroscopy to probe nanoscale phenomena. Analysis of his recent publications reveals a strong emphasis on the physics of quantum-confined systems, particularly in lead chalcogenide and cadmium selenide nanocrystals. His work explores the relationship between nanocrystal structure and electronic properties, with applications in optoelectronics and quantum technologies. Recent research has focused on oriented attachment processes, artificial quantum systems with fractal geometries, and the fundamental limits of light-matter interactions in nanoscale materials. Professor Vanmaekelbergh has established a productive research program with numerous collaborations across the Netherlands and internationally. His work has been published consistently in high-impact journals including Nature Physics, Nano Letters, and ACS Nano, demonstrating the significance of his contributions to the field of nanomaterials science.