Marcia O’Malley is the Thomas Michael Panos Family Professor in Mechanical Engineering, Computer Science, Electrical and Computer Engineering, and Bioengineering at Rice University’s George R. Brown School of Engineering. She chairs the Department of Mechanical Engineering and directs the Mechatronics and Haptic Interfaces (MAHI) Lab. Her research focuses on haptics and robotic rehabilitation, particularly wearable robotic systems for training and rehabilitation in virtual environments. She holds adjunct roles at Baylor College of Medicine and the University of Texas Medical School. Educated at Purdue University (B.S., 1996) and Vanderbilt University (M.S./Ph.D., 1999/2001), Dr. O’Malley has been recognized with prestigious awards, including the ONR Young Investigator Award, NSF CAREER Award, and multiple fellowships. She has twice won Rice’s George R. Brown Award for Superior Teaching. Her work bridges engineering and medicine, addressing human-robot interaction challenges in surgical training, workforce safety, and neurorehabilitation. The MAHI Lab develops devices like the hBracelet and Rice Haptic Rocker to enhance human-robot collaboration. She co-founded Houston Medical Robotics, Inc., applying her innovations to real-world medical applications. Research Interests: Haptics, wearable robotics, neural interfaces, surgical training metrics, and rehabilitation robotics. Labs/Teams: MAHI Lab (Biosciences Research Collaborative), collaborations with medical institutions. Grants/Awards: Extensive funding from NSF, ONR, and industry partnerships; leadership in editorial roles for IEEE Transactions on Haptics.
Frank L. Hammond III serves as Assistant Professor at Georgia Tech's Woodruff School of Mechanical Engineering since April 2015, directing the Adaptation Robotic Manipulation (ARM) Laboratory. A Carnegie Mellon PhD graduate, he previously held postdoctoral positions at MIT and Harvard as a Ford Fellow. His interdisciplinary work bridges mechanical engineering, biomedical applications, and computational design. Education Ph.D. in Mechanical Engineering, Carnegie Mellon University M.S. in Mechanical Engineering, University of Pennsylvania M.S. in Electrical Engineering, University of Pennsylvania B.S. in Electrical Engineering & Biomedical Engineering, Drexel University Hammond's research pioneers adaptive robotic manipulation (ARM) systems that operate in unstructured human environments through bioinspired computational design. His lab develops xenomorphic (non-biomorphic) robots using soft pneumatic actuation, flexible electronics, and machine learning to achieve biological-level versatility. Key application domains include wearable human augmentation devices , haptic-enabled surgical teleoperation , and autonomous soft platforms for medical and industrial use. The ARM methodology integrates empirical biomechanics characterization with simulation-driven optimization and rapid prototyping. Analysis of his 15 most recent publications (2023-2025) reveals three dominant trends: (1) Medical rehabilitation breakthroughs through intention-driven exoskeletons with soft bioelectronics, (2) Novel locomotion strategies for soft robots in complex environments (sand, water, cluttered spaces), and (3) Advanced haptic feedback systems leveraging multimodal sensory substitution for proprioceptive restoration. These works consistently bridge biomechanics, control theory, and human factors. Awards Ford Postdoctoral Research Fellowship at Harvard School of Engineering Hammond actively mentors graduate researchers including PhD candidates Lucas Tiziani (soft actuators) and Bangyuan Liu (earthworm robotics), and Master's student Alex Hart (pediatric haptics). His lab secures research funding for projects like tunable mechanical interfaces for neuropathy treatment and cognition-focused wearable devices, with strong industry and clinical partnerships evident in co-authored medical device publications. The ARM Lab maintains robust collaborations across Georgia Tech's robotics, neuroscience, and biomedical engineering communities. The Adaptation Robotic Manipulation Laboratory operates from Whitaker Building Room 4102, housing specialized facilities for soft robot fabrication (3D printing, shape deposition manufacturing) and biomechanics testing. Current projects include pediatric haptic feedback displays, biomimetic swimming robots, and kirigami-skinned earthworm robots for subsurface locomotion. The lab emphasizes translational research with multiple pending medical device patents and active participation in K-12 STEM outreach programs.
Professor Guy Williams is a leading academic at the University of Cambridge with a focus on imaging science and clinical neurosciences, affiliated with Downing College and the Wolfson Brain Imaging Centre . Holding a PhD in Physics from his initial Natural Sciences degree, he specializes in nuclear magnetic resonance (NMR) and MRI techniques for brain imaging. Education: BA, PhD in Physics His research centers on non-invasive imaging of brain structure and function, particularly in traumatic brain injury (TBI) and dementia. His work involves developing novel MRI pulse sequences and advanced data analysis algorithms, including AI-based diagnostic tools. He leads studies on white matter integrity post-trauma, longitudinal dementia assessment, and applications of MRI in disorders of consciousness and addiction. Recent publications highlight collaborations in traumatic brain injury outcomes, AI-guided dementia prediction, and neuroimaging of post-COVID cognitive deficits. His team's work on ultra-high field laminar fMRI and distortion correction methods has advanced clinical neuroscience applications. Key techniques include diffusion tensor imaging (DTI), 7 Tesla MRI, and positron emission tomography (PET/MR). His research spans from basic NMR physics to clinical translation, with a strong emphasis on multi-site studies and real-world diagnostic implementation.
Dr. Timothy Hresko is a Professor of Orthopedic Surgery at Harvard Medical School and serves as an Orthopedic Surgeon in the Orthopedics and Sports Medicine Department at Boston Children's Hospital. He also holds the position of Director of Spine Research and Quality Improvement in the Department of Orthopedic Surgery. Dr. Hresko received his medical degree from Columbia University, College of Physicians and Surgeons in 1981. He completed his internship at New England Deaconess Hospital in 1982, followed by residency at New England Medical Center in 1987, and a fellowship at Boston Children's Hospital in 1988. He is certified by the American Board of Orthopedic Surgery. His research focuses on orthopedic surgery, particularly spine surgery and pediatric orthopedics. Dr. Hresko's work centers on scoliosis treatment, spinal deformity correction, and outcomes of pediatric spinal fusion surgeries. He has conducted extensive research on surface topography measurements for scoliosis assessment, bracing techniques for adolescent idiopathic scoliosis, and surgical outcomes for various spinal conditions. His recent work explores the biomechanical effects of thoracolumbosacral orthosis design and the relationship between spinal deformity and patient self-image. Dr. Hresko's recent publications demonstrate a strong emphasis on technological advancements in spine surgery, including robotic pedicle screw placement and computer vision algorithms. His work also explores the relationship between socioeconomic factors and surgical outcomes, as well as innovative approaches to non-surgical management of scoliosis. Scoliosis Research Society (SRS) Pediatric Orthopaedic Society of North America (POSNA) American Academy of Orthopaedic Surgeons (AAOS) American Board of Orthopaedic Surgery As Director of Spine Research and Quality Improvement, Dr. Hresko leads initiatives to enhance patient outcomes and optimize care pathways for children with spinal conditions. His work emphasizes evidence-based approaches to pediatric spine care, with particular attention to quality improvement and research translation into clinical practice.
Massimo Mischi is a Full Professor at the Faculty of Electrical Engineering of the Eindhoven University of Technology (TU/e) and chairs the Signal Processing Systems (SPS) Division , the largest division at TU/e with over 250 researchers. He founded the Biomedical Diagnostics (BM/d) Lab in 2012, which now includes 180 researchers and clinical/industrial advisors, focusing on biomedical signal processing for diagnostics and monitoring.
Swiss Federal Institute of Technology in LausanneSwitzerland
Mohamed Bouri is a Senior Lecturer and Researcher at École Polytechnique Fédérale de Lausanne (EPFL), where he is affiliated with the School of Engineering (STI) and specifically the Microengineering Department (SCI-STI-MB). He is part of the ReHAssist research group (http://rehassist.epfl.ch), which focuses on rehabilitation robotics and human-robot interaction. His office is located in the MED Building (MED 3 1016) at Station 9, 1015 Lausanne. Dr. Bouri's research spans several key areas in robotics and rehabilitation engineering. His primary focus is on the development and control of exoskeleton systems for mobility assistance and rehabilitation. He has made significant contributions to hip exoskeleton technology, adaptive control strategies, and human-robot interaction paradigms. His work bridges engineering principles with clinical applications, particularly for individuals with mobility impairments and neurological conditions. Additional research interests include sensory substitution techniques, balance control systems, and astronomical instrumentation involving robotic fiber positioners for multi-object spectrographs. Analysis of Dr. Bouri's recent publications reveals a strong emphasis on practical applications of robotics in rehabilitation settings. His work increasingly focuses on user-centered design, adaptive control systems that respond to individual user needs, and ecological validity in testing environments. There's a clear trend toward developing systems that can function effectively in real-world scenarios rather than controlled laboratory settings. His research also shows growing integration of physiological feedback mechanisms and multimodal sensing to enhance human-robot cooperation, with applications spanning from Parkinson's disease rehabilitation to astronomical instrumentation. Dr. Bouri has supervised numerous doctoral students whose theses reflect the breadth of his research interests, including work on lower-limb exoskeletons, robotic control systems, and rehabilitation technologies. His collaborative approach is evident in the extensive list of co-authored publications across multiple institutions and disciplines, demonstrating his ability to bridge engineering with clinical and astronomical applications. Based at EPFL's Microengineering Department, Dr. Bouri leads research activities within the ReHAssist laboratory, which specializes in rehabilitation assistance technologies. The lab focuses on developing innovative robotic solutions for mobility assistance, with particular expertise in exoskeleton design, control algorithms, and human-robot interaction paradigms. His work on projects like TWIICE One has demonstrated real-world impact in assistive technology development.
Zion Zibly, MD, MBA is an Associate Professor in the Department of Neurosurgery at Yale School of Medicine . He holds multiple leadership roles including Director of the Center of Neuromodulation , Director of the Center of Neurosurgical Cancer Pain , and Head of Stereotactic & Functional Neurosurgery and the Focused Ultrasound Institute . Previously served as Chair of Neurosurgery at Sheba Medical Center after graduating from Technion’s Faculty of Medicine (MD) and Coller School of Management (MBA). Research Interests: Specializes in Neuromodulation for movement disorders (Parkinson’s, tremors, dystonia), Deep Brain Stimulation , Gene Therapy for pediatric neurodegenerative conditions, Oncological Neurosurgery , and Neurological Pain Management . Combines Functional Neurosurgery with Focused Ultrasound technology. Scientific Contributions: Participated in pioneering Alzheimer’s brain stimulator procedures and Gene Therapy applications. Active member of the North American Association of Functional Neurosurgery and Israeli Neurosurgical Society . Clinical Expertise: Implantation of electrostimulators for Parkinson’s and essential tremor, treatment of Benign/Malignant CNS Tumors , and management of Neurological Pain Conditions . Affiliated with Yale Cancer Center and Center for Brain & Mind Health .
Xiaoyao Fan is an Assistant Professor of Engineering at Dartmouth College, specializing in image guidance systems for neurosurgery and spine surgery. His work focuses on improving intraoperative imaging accuracy through computational modeling, stereovision, and ultrasound technologies. He collaborates with the Center for Surgical Innovation (CSI) at Dartmouth-Hitchcock Medical Center (DHMC) and has contributed to over 400 surgical cases involving real-time imaging and feedback systems. Education: B.E. in Electrical Engineering, Tsinghua University (2007) Ph.D. in Biomedical Engineering, Dartmouth College (2012) Research Interests: His research emphasizes minimizing surgical errors via real-time brain deformation compensation, spine motion correction, and intraoperative imaging systems. Techniques include stereovision, 3D ultrasound, and machine learning for image registration and navigation. Key applications include open and minimally invasive neurosurgical procedures. Publications: His work spans stereovision systems for spinal surgery, brain shift compensation algorithms, and intraoperative ultrasound registration. Recent contributions address human feasibility and porcine model validation of surgical navigation tools. Grants & Labs: Collaborates with Medtronic on integrating updated imaging into navigation systems. Active in the CSI DHMC lab, focusing on clinical translation of real-time imaging solutions. Teaches ENGS 111: Digital Image Processing. Labs & Teams: Works within Dartmouth’s engineering and medical collaboration networks, advancing surgical precision through interdisciplinary research.
Dr. Cooper Harshbarger is a Lecturer at the Department of Health Sciences and Technology at ETH Zurich , Switzerland. His research bridges biomechanics and acoustofluidics, focusing on spinal surgery and microscale cell manipulation technologies. Email: cooper.harshbarger@hest.ethz.ch Research Interests : Dr. Harshbarger specializes in biomechanical analysis of spinal structures and acoustofluidic device development . His work explores: Biomechanics of the lumbar spine and osteoligamentous complexes Acoustically-driven microfluidic systems for medical diagnostics Cell focusing/trapping technologies using sharp-edge acoustofluidics Scientific Contributions : Recent publications highlight his dual expertise in spinal fusion biomechanics and microscale fluid control , with applications in cancer diagnostics and cell manipulation. Key technologies include BAW-based systems and programmable acoustofluidic chips.
Swiss Federal Institute of Technology in LausanneSwitzerland
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.
Dr. Joseph Choi is a Clinical Lecturer and General Surgery Fellow at the University of Sydney's Westmead Clinical School, within the Discipline of Surgery under the Faculty of Medicine and Health. He holds academic qualifications including BSc(Adv), MBBS, MPhil, and FRACS. His clinical and research interests focus on surgical outcomes, colorectal surgery, endometriosis management, and minimally invasive techniques. Dr. Choi's research emphasizes surgical complications, anastomotic leak prediction, and emerging surgical technologies. He has contributed to over 30 peer-reviewed publications since 2011, with recent work addressing robotic surgery feasibility, Strongyloides stercoralis infections, and HER2 therapy outcomes in breast cancer. His academic profile includes collaborations with multidisciplinary teams across oncology, gastroenterology, and gynecology. No formal awards or grants are explicitly listed, though his prolific publication record reflects sustained scholarly activity.
Gary Zimmerman, MD is an Assistant Professor at the Yale School of Medicine within the Department of Neurosurgery . He specializes in neurosurgical care , with clinical expertise in minimally invasive spinal surgery , sacroiliac joint fusion , spinal tumors , and meningiomas . MD from SUNY Downstate Medical School (1990) Residency at Cornell University/The New York Hospital (1996) Fellowship in Cerebrovascular and Skull Base Surgery at The Mayfield Institute/University of Cincinnati (1997) His research and clinical work focus on advancing neurosurgical techniques , particularly minimally invasive approaches for spinal and brain tumor treatments. He is board-certified in Neurological Surgery by the American Board of Neurological Surgery (2000). Dr. Zimmerman is affiliated with Yale Medicine and provides patient care at 1 Long Wharf Drive, New Haven, CT. He is actively involved in clinical education and innovation within neurosurgery.
Dr. Dominika Ignasiak is a Researcher affiliated with the Institute of Biomechanics at ETH Zürich. Her work focuses on spinal biomechanics, musculoskeletal modeling, and computational analysis of spinal pathologies. She contributes to understanding the biomechanical implications of surgical interventions, spinal deformities, and age-related changes in spinal alignment and loading. Her research integrates clinical data with advanced musculoskeletal modeling techniques, particularly in predicting postoperative outcomes and assessing spinal load distributions under dynamic conditions. Key areas include spinal stenosis, idiopathic scoliosis, and the biomechanics of spinal fusion surgery. Dr. Ignasiak collaborates on translational studies bridging computational simulations with clinical applications. Her publications emphasize the role of personalized models in optimizing surgical strategies and understanding degenerative spinal conditions. While no formal awards are listed, her contributions to spinal biomechanics research are evident through her active publication record in high-impact journals. Dr. Ignasiak is based at ETH Zürich’s Institute of Biomechanics, where she engages in cutting-edge research and contributes to both academic and clinical advancements in orthopedic biomechanics.
Patrick J. Cahill, MD, is a pediatric spine specialist and the Robert M. Campbell Jr. Endowed Chair in Thoracic Insufficiency Syndrome at Children's Hospital of Philadelphia (CHOP). His clinical expertise spans disorders of the pediatric spine, scoliosis, cervical spine conditions, and minimally invasive surgical techniques. He leads the Center for Thoracic Insufficiency Syndrome, collaborating with pulmonology, anesthesia, and physical therapy teams. Academic Role: Physician Scientist Leadership: Director of the Center for Thoracic Insufficiency Syndrome Research Focus: Spinal growth modulation, 3D surgical planning, and reducing anesthesia exposure in young patients His work emphasizes fusionless treatments like magnetically expandable growing rods and Mehta casting, alongside innovations in dynamic MRI for preoperative assessment. Recent publications highlight comparative studies on spinal fusion techniques, surgical complication classifications, and multidisciplinary approaches to complex cases. Awards: Philadelphia Magazine's Top Doctors (2022), SRS Travelling Fellowship (2015) Professional Memberships: Scoliosis Research Society, North American Spine Society, Pediatric Orthopaedic Society of North America
Matthew B Potts, MD is an Associate Professor in the Department of Neurological Surgery at Northwestern University's Feinberg School of Medicine, with secondary appointments in Neurology (Ken and Ruth Davee Department) and Radiology. His clinical expertise spans cerebrovascular surgery, neurointerventional/endovascular procedures, and management of brain aneurysms, vascular malformations, stroke, and spinal vascular disease across multiple Northwestern Medicine hospitals including Shirley Ryan AbilityLab. Dr. Potts completed his BS at MIT (2000) and MD at UCSF (2007), followed by surgical internship (2008), neurological surgery residency (2013), and cerebrovascular fellowship at NYU (2015). BS: Massachusetts Institute of Technology (2000) MD: University of California, San Francisco (2007) Internship: University of California-San Francisco Medical Center, Surgery (2008) Residency: University of California-San Francisco Medical Center, Neurological Surgery (2013) Fellowship: New York University Medical Center, Endovascular/Cerebrovascular Surgery (2015) His research program centers on chronic subdural hematoma pathophysiology, emergency stroke thrombectomy process optimization, and aneurysm treatment outcomes. He employs clinical-translational approaches to improve cerebrovascular disease management through advanced surgical techniques and rigorous outcomes assessment. Recent 2025 publications reveal strong focus on hydrocephalus diagnostics, hematoma expansion biomarkers, vertebrobasilar anatomy, and dolichoectatic aneurysm natural history. These works demonstrate multidisciplinary collaboration across neurosurgery, neurology, and radiology to advance diagnostic precision and treatment efficacy in complex cerebrovascular disorders. Dr. Potts has received exceptional recognition for medical education, including three consecutive Outstanding Teacher Awards (2019-2021) and the John X. Thomas, Jr. Best Teachers Award (2020). His research contributions are honored by the NIH Rush L. Kirschstein Award (2012) and Howard Hughes Fellowship (2005). Outstanding Teacher Award, Northwestern University Feinberg School of Medicine (2021) Outstanding Teacher Award, Northwestern University Feinberg School of Medicine (2020) John X. Thomas, Jr. Best Teachers of Feinberg Award, Northwestern University Feinberg School of Medicine (2020) Outstanding Teacher Award, Northwestern University Feinberg School of Medicine (2019) Ivan Ciric Resident Teaching Award, Northwestern University Department of Neurological Surgery (2017) Best Scientific Presentation, UCSF Department of Neurological Surgery (2013) NIH Rush L. Kirschstein National Research Service Award, National Institutes of Health (2012) UCSF School of Medicine Alumni Scholarship Award, University of California, San Francisco (2006) Howard Hughes Medical Institute Medical Student Research Fellow, Howard Hughes Medical Institute (2005) UCSF Quarterly Research Fellowship, University of California, San Francisco (2005) MIT-Germany Program Research Fellowship, Massachusetts Institute of Technology (2001) As an educator, Dr. Potts mentors medical students and residents through Feinberg's neurological surgery program, evidenced by his resident teaching award. His research is supported by institutional resources and prior NIH funding, with current industry relationships including ownership in Rhaeos, Inc. He serves as Assistant Editor for Neurosurgery and Associate Editor for Operative Neurosurgery. He operates within Northwestern's integrated neurovascular team across multiple hospital sites, collaborating with neurologists, neuroradiologists, and rehabilitation specialists to deliver comprehensive care for complex cerebrovascular conditions, with ongoing work focused on improving health equity in stroke treatment and minimally invasive surgical innovation.