Ricardo Zednik is a Professor at the Department of Mechanical Engineering, École de Technologie Supérieure (ÉTS) in Montreal. Holding degrees from Rice University (BA, BS) and Stanford University (MS, PhD), he specializes in piezoelectric materials, fracture mechanics, and microelectronic systems. His research focuses on sensors, innovative materials, and health technologies. Fields of Interest: Piezoelectricity, Fracture Mechanics, MEMS, Smart Materials, Crystallography With over 36 peer-reviewed publications and extensive supervision of graduate research (including 15+ co-directed theses and projects since 2016), Zednik contributes to applied research in materials science and biomedical engineering. He collaborates with LaCIME and PULÉTS laboratories on cutting-edge projects involving ultrasonic transducers, flexible sensors, and high-temperature material characterization. Current courses include Materials Technology (MEC200) and advanced research topics in Functional and Smart Materials (SYS877). His students explore applications like terahertz quality control, piezoelectric earcanal sensors, and Kirigami techniques for wearable electronics.
Muhammad Hussain is a Professor at the Elmore Family School of Electrical and Computer Engineering, Purdue University. His research focuses on futuristic electronics spanning healthcare, environment, energy, robotics, and defense applications, utilizing state-of-the-art CMOS technology for mass production of IoT and IoE devices. These systems range from rigid to flexible/stretchable electronics, emphasizing manufacturability and sustainability. Campus: West Lafayette Office: BRK 2042 Email: mmhece@purdue.edu Labs: DREAM (Device Research Engineering Applications and Manufacturing) Research Interests: His work in microelectronics and nanotechnology drives innovations like: Flexible hybrid electronics for extreme environments and defense applications Brain organoid electrophysiology tools Dissolvable chip packaging for sustainable e-waste reduction 3D heterogeneous integration of CMOS systems Wearable sensors for marine environments and robotics
Matthew Johnston is an Associate Professor in the School of Electrical Engineering and Computer Science at Oregon State University. His research focuses on integrating sensors with CMOS circuits, stretchable electronics, and bio-energy harvesting. He holds a B.S. from Caltech and a Ph.D. from Columbia University. Prior to academia, he co-founded Helixis, a biotech instrumentation startup, and worked in venture capital. His awards include the 2020 SRC Young Faculty Award and 2021 Teaching Excellence Award. Education : B.S., Electrical Engineering, California Institute of Technology, 2005 M.S., Electrical Engineering, Columbia University, 2006 Ph.D., Electrical Engineering, Columbia University, 2012 Research Interests : Johnston explores lab-on-CMOS platforms, stretchable sensor systems, and energy harvesting for low-power applications. His work bridges electronics engineering with biomedical and environmental fields, emphasizing practical applications through interdisciplinary collaboration. Awards : 2020 Semiconductor Research Corporation Young Faculty Award 2021 Oregon State University Teaching Excellence Award 2021 Provost Fellowship Advising & Grants : Johnston’s research is supported by grants from industry and federal agencies. His lab, the SIM Lab, develops innovative electronic systems for healthcare and environmental monitoring. Labs & Teams : He leads the SIM Lab , focusing on interdisciplinary projects in integrated circuits and biomedical applications.
Thomas Ebel is Professor and Head of the Centre for Industrial Electronics at the University of Southern Denmark (SDU) , Institute of Mechanical and Electrical Engineering. A leading expert in power electronics, high-voltage engineering and capacitor technology, he directs large, multi-partner research projects and teaches/supervises at both graduate and PhD levels. Education & Career Path Prof. Ebel holds the academic title Dr. rer. nat. and has been appointed full Professor at SDU. He concurrently serves as Head of Section at the Centre for Industrial Electronics, orchestrating cross-disciplinary research teams and infrastructure. Research Interests Power Electronics & Power Conversion: advanced converter topologies, WBG devices (GaN, SiC), high-frequency magnetics, grid-forming control. Dielectric Materials & Capacitors: polymer and hybrid nanocomposite dielectrics, self-healing metallized film capacitors, aluminium electrolytic capacitors, lifetime modelling and reliability. High-Voltage Engineering & Breakdown Physics: breakdown mechanisms in nanocomposites, corona and partial discharge, insulation coordination. IoT & Data-Driven Monitoring: real-time condition monitoring, digital twins, data-driven RUL estimation for power components. Publication Trends Across 133 research outputs (2018-2025) the dominant themes are (i) construction and reliability of 700 V-class aluminium polymer electrolytic capacitors, (ii) GaN-based power converter optimisation, (iii) hybrid AC/DC microgrid control and harmonic mitigation, and (iv) nanocomposite dielectrics for next-generation capacitors. The 15 most recent articles (2025) reinforce these directions while adding socio-technical energy analytics and green-vehicle powertrains. Scientific Awards Tek Innovation Prize 2023 – awarded for outstanding contributions to power electronics research and industrial innovation. Advising & Funding Prof. Ebel currently supervises ~10 PhD candidates and post-docs including L. Tavares, M. A. Khan, R. Maheshwari, S. Mateen, A. N. Pinky and others. He is Principal Investigator or Head Coordinator of six active projects (2024-2027) valued at >€8 M, spanning ultra-high-efficiency drives, hydrogen-PtX converters, self-healing capacitors and hybrid power-plant concepts. Laboratory & Teams He heads the High-Voltage Power Electronics Laboratory at SDU, equipped with 700 V/200 A capacitor test rigs, GaN/SiC converter prototyping benches, and environmental chambers for accelerated ageing studies. The centre collaborates with 20+ industrial partners and coordinates the international IEA Wind Task 50 on hybrid power plants.
Gamze Egin Martin is a Researcher in the MOBI - Electromobility Research Centre at Vrije Universiteit Brussel's Faculty of Engineering, specializing in Electrical Engineering and Power Electronics. She focuses on advanced thermal management systems for wide bandgap (WBG) semiconductors, power electronics for electric vehicles, and high-performance power module design. Her work includes projects like SOCMAAK36 (Smart Single Oil System), NEXTBMS (Next-Gen Battery Management Systems), and HiEfficient (GaN-based power systems). Research Interests: Power Electronics, Thermal Systems, Electric Vehicle Technologies, Semiconductor Reliability Her recent publications address challenges in GaN power modules, SiC MOSFET cooling, and additive manufacturing for automotive inverters. She actively collaborates with industry partners, contributing to EU-funded initiatives like ECSEL. Key Projects: BRGPROV9 (HiEfficient), EUAR140 (NEXTBMS), SOCMAAK36 She has supervised student research, including Aouami's Master's thesis on cooling systems for WBG-based chargers.
Roozbeh Tabrizian is an Associate Professor in the Department of Electrical & Computer Engineering at the University of Florida, holding the Nelms Rising Star Endowed Professorship. His research focuses on RF micro- and nano-electro-mechanical systems (RF N/MEMS), nonlinear and nonreciprocal systems, and ferroelectric materials for sensing and information processing. He has received prestigious awards including the NSF CAREER Award (2018) and DARPA Young Faculty Award (2019). Education: PhD in Electrical Engineering from Georgia Tech (2013), BS from Sharif University of Technology (2007). Research interests include developing temperature-stable acoustic resonators, ferroelectric transducers, and novel materials for high-frequency applications. His work bridges nanotechnology, materials science, and MEMS to create innovative devices for communication and sensing. Key scientific awards include the HWCOE Innovation Award (2025), DARPA Director’s Fellowship (2021), and multiple best paper awards at international conferences. His grants include the NSF CAREER Award supporting nano-acoustic waveguide research. He advises on advanced MEMS fabrication techniques and collaborates on CMOS-compatible resonators. His lab develops nanoelectromechanical tags for anti-counterfeiting and high-precision frequency control systems.
David Horsley is a Professor in the Department of Electrical and Computer Engineering at Northeastern University, based at the Oakland, CA campus. He serves as Deputy Director of the Institute for NanoSystems Innovation, a bicoastal research institute focused on semiconductor and nanotechnology advancements. Horsley earned his PhD in Mechanical Engineering from the University of California, Berkeley in 1998. His research focuses on Micro-Electromechanical Systems (MEMS), including the design and manufacturing of microfabricated sensors/actuators, mechatronics, and control systems. Notable projects include DARPA-funded work on gyroscopes and ultrasonic transducers, as well as NSF and industry collaborations in deep tech innovation. He has received prestigious awards such as the IEEE Fellowship and NSF CAREER Award. His work spans academic-industry partnerships, with contributions to ultrasonic imaging, MEMS-based sensors, and inertial systems. Education: PhD, Mechanical Engineering (UC Berkeley, 1998) Research interests emphasize MEMS applications in biomedical imaging, navigation systems, and consumer electronics. Recent publications highlight advancements in piezoelectric micromachined ultrasonic transducers (PMUTs), including designs for long-range detection, fingerprint sensing, and array-based imaging systems. Horsley leads interdisciplinary teams in developing miniaturized sensors and resonators with enhanced performance metrics. His lab actively explores synchronization phenomena in micromechanical oscillators to improve stability in gyroscopes and other precision instruments. Key Awards: Global Network Accelerator Award (2024), NSF CAREER Award (2009) Grants: $2M DARPA FLASH project, NSF EAGER grant for international tech partnerships As Deputy Director, Horsley oversees the Institute for NanoSystems Innovation’s initiatives in nanoscale semiconductor design, fostering collaboration between Northeastern’s Boston and Oakland campuses. His lab develops MEMS technologies with applications in healthcare, robotics, and smart devices, emphasizing scalable manufacturing processes and cross-disciplinary innovation.
Johan Sidén is a Lecturer and Associate Professor at Mid Sweden University , employed in the Department of Computer and Electrical Engineering (DET) . His work focuses on RFID technology , antenna design , and printed/flexible electronics , with a particular emphasis on industrial IoT and welfare technology applications. Research Keywords : Radio Frequency Identification, Antenna Design, Flexible Electronics, Wireless Sensor Networks, Microwave Engineering, Electronic Design Key Projects : DRIVEN (data-driven industrial transformation), SmartArea (functional surfaces), Pressure (ulcer monitoring), MakeSense! (welfare technology) Publications : 15+ recent works on wearable antennas, smart packaging, UWB antenna design, and RFID sensor integration Collaborations include partnerships with industrial and academic institutions, focusing on sustainable electronics, sensor systems, and smart infrastructure. His technical expertise spans antenna optimization , printed circuits , and edge computing for harsh environments.
Mike Barnes is Professor in the Power Conversion group at the University of Manchester's School of Electrical and Electronic Engineering. He holds a BEng and PhD from the University of Warwick and is a Fellow of IET, IEEE, and HEA. His research focuses on power electronics applications in HVDC transmission, offshore wind energy integration, smart grids, and energy storage optimization. He has supervised over 24 doctoral students and serves as Associate Editor for IEEE Transactions on Energy Conversion. Barnes investigates high-voltage power conversion technologies to enhance renewable energy utilization and grid stability. His work spans semiconductor-based systems, advanced control strategies, and multi-scale modeling to reduce costs and improve efficiency in energy infrastructure. Current projects include grid-scale storage interfacing and power electronic transformers. Recent publications demonstrate his focus on real-time simulation of energy storage, stability analysis of HVDC systems, and thermal management of power modules. This research addresses critical challenges in renewable integration and grid resilience. IEEE Transactions Prize Paper (2012-13) IEEE Transactions Energy Conversion Best Paper (2018-19)
Omar Hegazy is a Professor in Electrical Engineering and Power Electronics at Vrije Universiteit Brussel (VUB), affiliated with the MOBI - Electromobility Research Centre. He leads research in power electronics systems, electric vehicle drivetrains, and energy management. His work focuses on reliability, WBG semiconductors, and sustainable transportation systems. Education details are not explicitly provided, but his extensive publication record and project leadership imply advanced academic qualifications. Research interests include power electronics, battery management systems, hybrid/fuel cell vehicles, and V2X technologies. His projects address challenges in electric vehicle infrastructure, grid integration, and renewable energy systems. Key trends in his articles include digital twin development for electric trucks, advanced thermal management of SiC devices, and optimization of DC charging systems. His work emphasizes practical applications like modular converters, fault-tolerant drives, and interoperable charging solutions. Awarded Best Master Thesis (2019), Best Paper (2024), and Optimal Design Recognition (2016) Supervised over 49 theses, including master's and doctoral studies in power electronics and EV systems Secured funding for projects like HiPower 5.0, HARPOONERS, and FLEXMCS Labs/Teams: Active in MOBI's Electromobility Research Centre, collaborating on advanced power electronics and e-mobility solutions. Involved in interdisciplinary teams for microgrid design and DC charging infrastructure.
John D. Cressler is a Regents Professor and Schlumberger Chair in Electronics at the Georgia Institute of Technology's School of Electrical and Computer Engineering. He earned his B.S. in Physics from Georgia Tech (1984) and Ph.D. in Applied Physics from Columbia University (1990). After pioneering SiGe research at IBM (1984-1992), he joined academia at Auburn University before moving to Georgia Tech in 2002. His research specializes in silicon-germanium heterojunction technology, with focuses on: RF/microwave/mm-wave circuits Radiation effects in electronics Cryogenic semiconductor behavior Device reliability physics Compact modeling for SiGe devices His 700+ publications demonstrate consistent innovation in SiGe HBT design, radiation-hardened circuits, and millimeter-wave systems. Recent work emphasizes radiation tolerance for space applications, high-frequency circuit optimization, and novel fabrication techniques. Major Awards: IEEE Fellow (2001) IEEE Leon K. Kirchmayer Graduate Teaching Award (2011) ONR Young Investigator Award (1994) IEEE Third Millennium Medal (2000) He leads Georgia Tech's SiGe research group with extensive industry collaborations and teaches courses including ECE 3040 (Microelectronic Circuits), ECE 6444 (SiGe Devices), and interdisciplinary courses on science/religion dialogue.
Xi Chen is an Associate Professor in the Grado Department of Industrial & Systems Engineering at Virginia Tech. He holds a Ph.D. in Industrial Engineering and Management Sciences from Northwestern University, an M.S. in Industrial Engineering & Systems Engineering from NC State, and a B.Sc. in Automation from Huazhong University of Science & Technology. His research focuses on stochastic modeling, simulation optimization, and power electronics, particularly in high-frequency converter design using GaN devices. Key research interests include planar transformer optimization, EMI reduction in power systems, and GaN-based high-efficiency converters. His work spans applications in adapters, PFC converters, and high-density power modules. Notable contributions include ultra-high efficiency 140W PD3.1 adapters and LLC modules using GaN power ICs. Education: Ph.D., Industrial Engineering & Management Sciences, Northwestern University M.S., Industrial Engineering & Systems Engineering, NC State B.Sc., Automation, Huazhong University of Science & Technology Awards: 2013 Nemhauser Dissertation Prize Student Scholarship Award (Spring Research Conference) Arthur P. Hurter Award for Academic Excellence Professional Activities: INFORMS Simulation Society ACM SIGSIM Society for Industrial and Applied Mathematics Recent Courses: ISE 5414: Random Process ISE 5424: Simulation Labs/Teams: Active in power electronics research with a focus on GaN devices and high-frequency converter design.
Alan Mantooth is a Distinguished Professor holding the Twenty-First Century Research Leadership Chair in Engineering within the Department of Electrical Engineering at the University of Arkansas, Fayetteville. He serves as Director of the National Center for Reliable Electric Power Transmission (NCREPT), Executive Director for GRAPES (NSF I/UCRC) and SEEDS (DoE Center), and Deputy Director of the NSF Engineering Research Center for Power Optimization of Electro-Thermal Systems (POETS). His educational background includes: B.S. in Electrical Engineering, University of Arkansas M.S. in Electrical Engineering, University of Arkansas Ph.D. in Electrical Engineering, Georgia Institute of Technology Dr. Mantooth's research centers on analog/mixed-signal IC design, power electronics CAD, and semiconductor device modeling with emphasis on harsh-environment applications. His pioneering work in silicon carbide (SiC) and gallium nitride (GaN) power systems has enabled high-temperature operation for electric vehicles and renewable energy infrastructure, significantly advancing reliability in extreme conditions. His 2025 publications reveal strong trends toward AI-driven power electronics (e.g., SolarFormer++ for PV profiling), wide-bandgap device modeling (β-Ga2O3, SiC), and innovative packaging solutions. Key themes include reliability engineering for extreme environments, multi-physics optimization, and explainable AI for safety-critical power systems. Major scientific recognition includes: IEEE Fellow (2009) for power electronic device modeling Three R&D 100 Awards (2009, 2014, 2016) for SiC power modules IEEE Power Electronics Society Technical Achievement Award (2019) Multiple university teaching/research awards including SEC Faculty Achievement Award (2015) As an exceptional mentor (UA Outstanding Mentor 2006-2008), he co-founded Lynguent and Ozark Integrated Circuits. His centers NCREPT, GRAPES, and SEEDS have secured major funding from NSF, DoE, and industry partners, supporting over 350 refereed publications and numerous patents. Current research focuses on AI-enhanced power electronics, recyclable packaging, and next-generation wide-bandgap device characterization. He leads the NCREPT test facility and multi-institutional teams developing grid-connected power electronic systems, secure energy delivery architectures, and thermal management solutions for high-power-density applications, with direct impact on electric transportation and renewable energy integration.
Daniel G Georgiev is a Professor in the Department of Electrical Engineering and Computer Science at the University of Toledo's College of Engineering. He has been on faculty since Fall 2006, following prior roles as a research faculty member at Wayne State University's Center for Smart Sensors and Integrated Microsystems (SSIM). Education : M.S. in Engineering Physics (Quantum Electronics and Laser Equipment) from Sofia University (1994), Ph.D. in Electrical Engineering (Electronic Materials and Devices) from the University of Cincinnati (2003). Research Interests : Dr. Georgiev's work focuses on laser modification and micro-structuring of materials, thin films of semiconducting oxides/nitrides (e.g., NiO, Zn3N2), glassy materials, metal whiskers (Sn, Cu), wide bandgap semiconductors (GaN, Zn3N2), photovoltaics, and biomedical device applications. His expertise spans device fabrication, material characterization, and radiation effects. Article Trends : Recent publications emphasize GaN-based power electronics, hybrid edge termination structures, threshold switching in nanocircuitries, and material innovations via reactive sputtering. Subfields include laser microstructuring, whisker suppression in Sn films, and doping strategies for nitride semiconductors. Collaborations : Co-authorship with researchers across institutions, including contributions to biomedical implants, II-VI nanocrystals, and chalcogenide glasses.
Steven Kosier is a Research Professor of Electrical and Computer Engineering at Vanderbilt University's School of Engineering . His research focuses on microelectronics reliability, particularly radiation effects on power devices and advanced CMOS technologies. He explores semiconductor applications for space and military systems, emphasizing interdisciplinary solutions. Education: Ph.D., Electrical Engineering, University of Arizona M.S., Electrical Engineering, University of Arizona B.S., Electrical Engineering, University of Minnesota Research Interests: Radiation Effects on Semiconductors SiC Power MOSFET Reliability High-Voltage Device Design Space and Military Electronics Multi-disciplinary Engineering Solutions Publications Trends: His recent work emphasizes radiation-hardened power devices, trench-based semiconductor architectures, and hybrid sensor systems. Key themes include SiC MOSFET degradation under heavy-ion irradiation, TID effects in nanoscale MOSFETs, and high-voltage trench device optimization. Awards: No specific scientific awards were listed in the provided text. Grants and Labs: No grants or lab affiliations were explicitly mentioned. His research appears to focus on device physics and semiconductor reliability without noted collaborative lab structures.