Danick Briand is a Senior Scientist at the Soft Transducers Laboratory within the Microsystems for Space Applications Group (LMTS) at École Polytechnique Fédérale de Lausanne (EPFL). His work focuses on MEMS and Microsystems for environmentally friendly technology , integrating flexible and printed electronics with applications in energy harvesting , smart sensing systems , and advanced gas sensing . Research Themes : Environmental sensors using microsystem technology Green microtechnologies and micromanufacturing Ultra-low energy MEMS Energy-saving and harvesting systems Recent Publications : Developed transient biodegradable sensors and microwave sensing technologies using printed and degradable materials Explored flexible piezoelectric systems and wearable sweat analyzers for biomedical applications Advanced inkjet-printed biosensors and eco-friendly fabrication methods Labs & Collaborations : Soft Transducers Laboratory (EPFL) Laboratory for Microsystems (LMTS)
Andras Kis is a Full Professor at the École Polytechnique Fédérale de Lausanne (EPFL), affiliated with the School of Engineering (STI) across multiple institutes including the Institute of Electrical Engineering (IEL), Institute of Materials Science (IMX), and teaching programs in Electrical Engineering (SEL-ENS). He leads the Laboratory of Nanoscale Electronics and Structures (LANES) and serves on the PhD program committee for Microsystems and Microelectronics. PhD, EPFL (2003) MS, Physics, University of Zagreb (1999) Baccalaureate, MIOC High School Research Focus: Pioneering work on 2D materials for electronic and optoelectronic devices, particularly transition metal dichalcogenides like MoS2 and PtSe2. His research spans: Transistor design with atomically thin semiconductors Excitonic devices and valleytronics Nanofluidics and ionic logic Optical properties of 2D heterostructures Scalable fabrication of 2D materials Defect engineering and doping techniques Scientific Impact: Based on analysis of 15 most recent publications, his work focuses on advancing 2D materials for next-generation electronics through innovations in: Van der Waals heterostructures Thermoelectric and optoelectronic applications Nanofabrication techniques Spintronic and quantum transport phenomena Memristive and neuromorphic devices Characterization of electronic and optical properties Awards & Recognition: Fellow of the Institute of Electrical and Electronics Engineers (IEEE) Lotfi A. Zadeh Award for Emerging Technologies (2024) Highly Cited Researcher (Clarivate Analytics) Teaching & Academic Leadership: Currently teaching courses including Lab in Nanoelectronics , Physical Models for Micro and Nanosystems , and Semiconductor Devices II . He has supervised over 20 PhD students in his research group at EPFL. Laboratory & Collaborations: Directs the Laboratory of Nanoscale Electronics and Structures (LANES) which focuses on fundamental and applied research in 2D materials and nanoelectronic devices. His work bridges materials science, condensed matter physics, and microelectronics engineering.
Stéphanie P. Lacour is a Full Professor at the School of Engineering, École Polytechnique Fédérale de Lausanne (EPFL), where she holds the Foundation Bertarelli Chair in Neuroprosthetic Technology. She leads the Laboratory of Soft Bioelectronic Interfaces (LSBI) and is affiliated with multiple departments including INX-STI, STI-SMT, SV-SSV, and AVP-DLE-EDOC. Since 2025, she has served as EPFL’s Vice-President for Support to Strategic Initiatives, overseeing institutional research strategy. Her research is centered at Campus Biotech in Geneva, where she was the founding director of the Neuro-X Institute. PhD in Electrical Engineering, INSA Lyon, France (1998–2001) Postdoctoral Research, Princeton University and University of Cambridge Joined EPFL in 2011 Her research focuses on soft bioelectronic interfaces that seamlessly integrate with biological tissues. She pioneers the development of stretchable, compliant electronics for implantable and wearable applications, using techniques from MEMS and microelectronics adapted to elastomeric substrates. Her work enables long-term, minimally invasive neural interfacing for applications in neuroprosthetics, rehabilitation, and health monitoring. Key innovations include soft electrocorticography arrays, liquid metal sensors, and encapsulation methods for chronic implants. Her recent publications span high-impact journals such as Nature , Science Robotics , Advanced Materials , and Nature Nanotechnology , covering topics like neural stimulation, soft robotics, wireless implants, and hydrogel-based interfaces . The work demonstrates a strong trend toward multimodal, closed-loop, and translational neurotechnologies with real-world clinical potential. Scientific Awards: No scientific awards explicitly mentioned in the provided text. She advises a large cohort of PhD students and postdoctoral researchers, many of whom have completed their theses under her supervision. Her team has received funding for projects in neural interfacing, bioelectronics, and soft robotics. She is actively involved in teaching courses such as Soft Microsystems Processing and Devices and Neural Interfaces . Lacour leads the Laboratory of Soft Bioelectronic Interfaces (LSBI) , a multidisciplinary research team focused on the fabrication, characterization, and in vivo evaluation of soft bioelectronic systems. The lab collaborates extensively across EPFL and with clinical partners to translate technologies from bench to bedside.
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.
Francesca Rodino is a Doctoral Assistant and Research Fellow at École Polytechnique Fédérale de Lausanne (EPFL), affiliated with the School of Engineering and the Electrical and Microengineering Institute (IEM). She conducts research at the BCI Lab in Neuchâtel, focusing on electrochemical biosensors and precision oncology platforms. She is concurrently pursuing a PhD in Microsystems and Microelectronics (EDMI program) at EPFL. Education: B.Sc. in Biomedical Engineering, Politecnico di Torino (2019) M.Sc. in Biomedical Instrumentation, Politecnico di Torino (2022) Research Focus: Her work integrates electrochemical sensors, machine learning, and microsystems for therapeutic drug monitoring and biomedical diagnostics. Key areas include: (1) Multi-drug quantification using intelligent sensors for personalized cancer therapy, (2) Machine learning-driven optimization of electrochemical detection, (3) Microfluidic platforms for disease diagnosis (e.g., malaria), and (4) Wearable systems for neural prosthetics. Her research bridges biomedical engineering, electronics, and data science to advance precision medicine. Publication Trends: Recent articles (2022-2024) demonstrate strong emphasis on electrochemical sensors enhanced by machine learning for pharmaceutical monitoring, particularly in oncology. Secondary themes include microfluidic diagnostics, wearable medical devices, and environmental sensors. Over 85% of publications involve interdisciplinary collaborations, reflecting integration of engineering, computational methods, and clinical applications. Teaching & Leadership: Teaching Assistant for Bio-nano-chip design (EE-517) and MEMS practicals II (MICRO-503) EPFL team coach for international SensUs biotechnology competition
Dr. Cosmin Ioan Roman is a Lecturer at the Department of Mechanical and Process Engineering at ETH Zürich, affiliated with the Chair in Micro and Nanosystems since 2006. His research focuses on solid-state micro and nanotransducers, spanning from traditional Silicon micromachining to carbon nanotube-based (CNT) devices for bio-sensing applications, with an emphasis on energy-efficient transducer concepts. Doctoral Degree: National Polytechnic Institute of Grenoble (INPG) Roman's expertise lies in multi-physics and compact modeling of transducers. His work bridges materials science, semiconductor device physics, and biomedical sensing, utilizing advanced fabrication techniques for scalable sensor arrays on flexible substrates. The selected publications highlight his contributions to tactile sensing and cell rheology. His co-supervised doctoral thesis on carbon nanotube resonators demonstrates his interdisciplinary approach to nanoscale and biomedical systems.
Arnaud Bertsch is a Lecturer at the École Polytechnique Fédérale de Lausanne (EPFL) within the School of Engineering (STI) and the Department of Microengineering (IEM). He is affiliated with the Microsystems Laboratory 1 (LMIS1) and has been actively involved in teaching advanced microfabrication techniques and MEMS sensor/actuator practicals. His research spans microfluidics, nanofluidics, biomedical devices, and 3D microfabrication, with a focus on neural probes, drug delivery systems, and cell manipulation technologies. Microfluidic hydrodynamic and dielectrophoretic systems Nanovolcano microelectrode arrays for electrophysiology Thermal control of ionic transport in nanochannels 3D lipid microrobots for drug delivery MEMS-based intraocular pressure sensors Arnaud Bertsch has supervised PhD students including Torres Vila Pol, Zhang Tao, and past advisees like Clémentine Lipp, Nicolas Maïno, and Joan Teixidor. His work bridges fundamental research in nanofluidics with applied biomedical solutions, contributing to fields such as neuroscience, cancer therapy, and implantable medical devices. The articles listed demonstrate expertise in microsystem design, electrochemical sensing, and biofabrication technologies.
Daniele Guido Allegri is a Professor at the University of Applied Sciences and Arts of Southern Switzerland (SUPSI), affiliated with the Department of Innovative Technologies (DTI) and the Institute of Systems and Applied Electronics (ISEA). He became a professor in 2021 and serves as the director of ISEA since August 2023. His roles include leading the "Digital Electronics, Microelectronics, and Bioelectronics" scientific area since 2019. Allegri's research spans biomedical electronics, microelectronics, and embedded systems. Key projects include the development of radiation-hardened PLL ASICs (Cadagno, Quarnei), a Cardio Pulmonary Rescue Support System, and signal processing solutions for myopathy diagnosis and renal dialysis monitoring. He teaches courses on machine learning, analog/digital electronics, and embedded systems design. His publications focus on CMOS multifrequency impedance analyzers for biomedical applications (2018), real-time hydration monitoring via bioimpedance (2016-2017), and the European Solar Telescope (2021), which integrates advanced technologies for solar physics. These works reflect interdisciplinary expertise in circuit design, medical devices, and astrophysical instrumentation. Allegri's current affiliations include the Department of Innovative Technologies and ISEA at SUPSI. He has worked extensively on integrated circuits for biomedical applications, signal processing, and radiation-hardened electronics for space systems.
Simone Schürle-Finke is an Associate Professor at ETH Zurich's Department of Health Sciences and Technology , where she leads the Medical Microsystems Lab . Her research develops nano- and microscale diagnostic/therapeutic systems to address healthcare challenges like cancer and infectious diseases. Focuses on responsive nanosystems, wireless drug transport, and cellular-level disease mechanisms Utilizes chemical synthesis, synthetic biology, and nanofabrication techniques Interdisciplinary approach combining chemistry, physics, computer science, engineering, and mathematics Awards & Fellowships: Ernst Th. Jucker Prize for Cancer Research Prix Zonta for Women in Science Fellowships from SNSF, DAAD, and Branco Weiss Foundation Top 10 winner of Falling Walls Breakthrough Award (2025) Recognized as World Economic Forum Young Scientist (2017) and World Laureate Forum Young Scientist (2020, 2021)
Herbert Shea is a Professor at École polytechnique fédérale de Lausanne (EPFL), where he leads the Microsystems for Space Technologies Laboratory (LMTS) within the School of Engineering and Institute of Microengineering. His research spans soft robotics, electrostatic actuation, and haptic interfaces with significant contributions to wearable technologies and microfabrication techniques. Shea's research focuses on developing novel actuation mechanisms for soft robotics, particularly zipping electrostatic actuators, electroadhesion technology, and dielectric elastomer systems. His work emphasizes miniaturization, energy efficiency, and practical implementation in wearable haptic interfaces for virtual and augmented reality applications. Recent research explores wafer-level microfabrication techniques, stretchable electronics, and novel approaches to fluid manipulation through electrowetting. Analysis of his recent publications reveals a strong trend toward creating more efficient, compact, and versatile soft robotic systems. His research group has made significant advances in reducing actuation voltages while maintaining performance, developing novel fabrication methods for liquid-encapsulated actuators, and creating reliable sensing systems for robotic manipulation. The interdisciplinary nature of his work bridges materials science, electrical engineering, and mechanical design to solve practical challenges in human-robot interaction. Shea collaborates extensively with researchers across multiple institutions, particularly with Samuel Rosset, Vito Cacucciolo, and Florian Hartmann. His research is supported by organizations including the Swiss National Science Foundation and the European Union, reflecting the significance and potential impact of his work in soft robotics and wearable technologies.
Ali Meimandi is a Doctoral Assistant and candidate in the Doctoral Program in Microsystems and Microelectronics at École Polytechnique Fédérale de Lausanne (EPFL), Switzerland. He conducts research in the BioCMOS Interfaces (BCI) Laboratory within the Institute of Electrical Engineering and Microengineering, School of Engineering, focusing on ultralow-power biomedical integrated circuits. His educational background includes: M.Sc. in Electronics Engineering from Politecnico di Milano (2022) B.Sc. in Electrical Engineering (Electronics) from Amirkabir University of Technology (2018) Meimandi's research centers on designing ultralow power and ultralow area analog/mixed-signal ICs for brain monitoring applications. His expertise spans biosensors, neural prosthesis, and miniaturized CMOS circuits, with emphasis on developing innovative biomedical systems that bridge electrical engineering with neuroscience. His work targets practical implementations for implantable and wearable health monitoring technologies. His publication record shows consistent advancement in miniaturized circuit design for biomedical applications, particularly in brain monitoring, sweat analysis, and hydration tracking systems. These works demonstrate his dual expertise in analog circuit design and biological interface implementation. Key recognition includes: 2024 IEEE Sensors Letters Best Paper Award for 'Flexible Sensor and Readout Circuitry for Continuous Ion Sensing in Sweat' As a Teaching Assistant for Bio-nano-chip design (EE-517) and Analog circuits for biochip (EE-518), Meimandi contributes to EPFL's educational mission while advancing his research in active Bio/CMOS interfaces. His work in the BCI Laboratory focuses on heterogeneous integration of nanostructures for next-generation biosensors. The BioCMOS Interfaces Laboratory provides an interdisciplinary environment where Meimandi develops novel electronic-biological interfaces, with applications ranging from neural prosthetics to continuous health monitoring systems through innovative circuit architectures.
Paul Mos is a Doctoral Assistant affiliated with the School of Engineering at École Polytechnique Fédérale de Lausanne (EPFL), working within the Department of Microsystems and Microelectronics and the Advanced Quantum Architecture Lab (AQUA). His primary focus lies in quantum computing and advanced microsystems research. Education: Doctoral Program in Microsystems and Microelectronics, EPFL Research Interests: Quantum architecture design Microsystems engineering Microelectronics integration Quantum materials Contact: Address: Rue de la Maladière 71b, 2000 Neuchâtel Email: paul.mos@epfl.ch Office: MC A3 247 Phone: +41 21 695 44 41
Daniele Allegri is a Professor of 'Programmable and Integrated Microelectronic Systems' at the University of Applied Sciences and Arts of Southern Switzerland (SUPSI), leading the Department of Innovative Technologies. He serves as Director of the Institute for Systems and Applied Electronics (ISEA) since 2023 and previously held roles including Head of the 'Digital Electronics, Microelectronics, and Bioelectronics' research area (since 2019). His professional career spans engineering roles at Mandozzi Elettronica SA (1998–2014) and academic research at SUPSI (2014–present). Education: Ing.-Dipl. in Electronic Engineering from ETH Zurich (1998), PhD in Microelectronics from the University of Pavia (2017). Research Focus: Development of integrated circuits and embedded systems for biomedical applications, mixed analog-digital circuits, FPGA systems, signal processing, imaging technologies, and Edge AI. His work addresses clinical needs like real-time hydration monitoring for dialysis patients and advanced solar telescope instrumentation. Key Projects: Probing semiconductor rad-hardness via ions/lasers Next-gen tunnel safety sensors High-precision 3D imaging systems Cardio Pulmonary Rescue Support System Wireless pulmonary edema sensing networks Publications emphasize biomedical instrumentation and astrophysical engineering. No scientific awards explicitly listed in text, but contributions suggest strong peer recognition. Advising activity details not provided in source text. Current affiliations include leadership roles at SUPSI's ISEA and teaching responsibilities in multiple electronics-related courses.
Vivek Subramanian is a Full Professor at École polytechnique fédérale de Lausanne (EPFL), affiliated with the School of Engineering. He holds multiple key roles across departments, primarily at the Laboratory for Advanced Manufacturing Technologies (LAFT), and also contributes to teaching and leadership in SMT-ENS, EDMI-ENS, IEM-GE, CEAE, STI-DIR, and EDAM-GE. His research is centered on advanced manufacturing and microengineering, with a strong focus on printed and flexible electronics , soft microsystems , and sensor technologies . His work bridges materials science, device engineering, and scalable fabrication processes such as roll-to-roll and additive manufacturing. He teaches courses in Probability & Statistics for Engineers, Wireless Sensor Practicals, Organic and Printed Electronics, and Soft Microsystems Processing. The recent publications reflect a consistent trend in developing high-performance, solution-processed electronic devices, particularly organic transistors, photodetectors, solar cells, and wearable sensors. These works emphasize scalable, low-cost fabrication techniques and applications in energy, healthcare, and the Internet of Things. Scientific Awards: None listed in the provided text. Vivek Subramanian actively supervises a cohort of doctoral students and is involved in academic governance through roles such as Associate Director in IEM-GE, Head of EPFLNE-CC (until May 2025), and member of the Academic Evaluation Committee (CEAE) and STI Faculty Board. He is also a member of the Doctoral Program Commission for Manufacturing. His research is supported by funding bodies including the ETH Board, National Science Foundation (NSF), and the Jack Kent Cooke Foundation. He leads the Laboratory for Advanced Manufacturing Technologies (LAFT) , which focuses on innovative fabrication methods for next-generation electronic systems. The lab emphasizes interdisciplinary collaboration and practical applications in flexible, wearable, and printed electronics.
Shuo Li is a Professor in the Department of Macromolecular Engineering at ETH Zürich, Switzerland. His research focuses on innovative biomaterials, bioelectronic systems, and implantable medical devices. Key areas include bioresorbable materials for transient electronics, flexible/stretchable sensors, and soft robotics applications. His work integrates materials science with biomedical engineering to address challenges in tissue integration, real-time diagnostics, and programmable drug delivery. Recent projects emphasize wireless implantable sensors for continuous monitoring of physiological parameters such as blood flow, oxygen saturation, and pH levels in surgical flaps and organ grafts. He has pioneered 3D shape-morphing displays using liquid metal actuators and developed self-healing elastomeric switches for haptic interfaces. His research spans biomaterial synthesis, optoelectronics, and additive manufacturing of soft materials. Publications highlight advancements in bioresorbable platforms for drug delivery, light-controlled actuation systems, and optical probes for in vivo pharmacology. His interdisciplinary approach bridges material design, device fabrication, and clinical applications, with a focus on translating lab innovations into practical medical solutions. Advising and grants: No specific advisees or grant details listed in the provided text. However, his extensive publication record indicates active collaboration with research groups in bioelectronics, soft robotics, and biomedical engineering. Labs/Teams: Likely affiliated with ETH's Macromolecular Engineering lab and collaborate with multidisciplinary teams in materials science, robotics, and medical device development.