Steven Ceron is an Assistant Professor in Robotics at the University of Michigan's College of Engineering. His research focuses on swarm robotics, multi-agent systems, and programmable self-organization of micro- and macro-scale robot swarms. He leads the Synergetic Adaptive Machinas (SAM) Lab, which develops reconfigurable robot swarms for biomedical applications and smart materials integration. Key research areas include microrobot fabrication, heterogeneous swarm coordination, and self-reconfigurable modular systems. His work envisions seamless integration of robot swarms into daily life through innovations in design, control, and scalability. Recent publications emphasize swarmalator dynamics, strain-based coordination in soft robots, and scalable fabrication methods. His lab explores both theoretical frameworks and practical implementations, bridging micro-scale and macro-scale robotics applications. Though no awards were explicitly listed, his contributions to novel fabrication techniques and modular robotics suggest ongoing recognition in the field. Advising and grant details are not provided here, but his lab's focus on biomedical and aerospace applications indicates active collaborative projects.
Mark D. Gross is a Professor of Computer Science and Director of the ATLAS Institute at the University of Colorado Boulder. His research focuses on modular robotics, tangible interaction design, digital fabrication, and computational design. He co-founded Modular Robotics and Blank Slate Systems, leveraging his expertise in educational technology and maker culture. Education: PhD in Design Theory & Methods from MIT. Academic history includes roles at Carnegie Mellon University and University of Washington Seattle. His work spans architecture, robotics, and human-computer interaction. Research Interests: Modular robotics and computationally enhanced construction kits Tangible interaction and e-textiles Shape-changing interfaces and swarm robotics Sketch-based interaction and digital fabrication Publications highlight advancements in collaborative AR systems, shape-changing interfaces (e.g., LiftTiles, ShapeBots), and accessible technologies like FluxMarker. His work bridges computational tools and creative design processes. Advising: Guided students such as Ryo Suzuki (PhD '20). Entrepreneurial ventures include companies spun off from research. Labs/Teams: Leads projects at the ATLAS Institute, emphasizing interdisciplinary collaboration in robotics, design, and human-centered computing.
Sara Nabil is an Assistant Professor at Queen's University's School of Computing within the Faculty of Arts and Science. She leads the HCI Design Studio and previously held a postdoctoral position at Carleton University's Creative Interactions Lab. Her research focuses on integrating interior design, fashion, and product design with interactive technologies, emphasizing e-textiles, smart materials, and shape-changing interfaces. She holds a PhD from Newcastle University and prior experience as an HCI Lecturer, interior designer, and senior software developer. Education: PhD in Computing, Newcastle University (2019) MSc in Computing BSc in Computing Research interests include designing computational spaces, wearable technology, and e-textile interactions. Her work explores sustainable fabrication methods, user-centered design for smart environments, and bridging traditional crafts with digital technologies. Notable projects include exhibitions like 'Living with Adaptive Architecture' and 'Persuasive Pharmacy Space,' showcasing interactive wearables and spaces. Her recent articles (2023–2025) emphasize e-textile innovations, sustainable design, and human-building interactions. Key themes include smart materials in fashion, modular wearables, and community-driven interaction systems. Awards: None explicitly mentioned. Advising/Grants: No details provided. Labs/Teams: Head of HCI Design Studio and part of iStudio Lab, focusing on interioraction design.
Dr. Rong-Hao Liang is an Assistant Professor at Eindhoven University of Technology (TU/e), affiliated with both the Future Everyday Group (Department of Industrial Design) and the Signal Processing Systems Group (Department of Electrical Engineering). His research bridges intelligent sensing systems and user interface technology for ubiquitous computing and embodied human-computer interaction . He co-organized international ACM conferences (CHI, UIST, DIS) and has over 70 peer-reviewed publications and 10 patents. PhD in Computer Science (2014) and MSc in Electrical Engineering (2010) from National Taiwan University Founded GaussToys Inc. in 2015, focusing on magnetic-field sensors Cross-appointed to Electrical Engineering in 2021 His research explores intelligent sensing systems , tangible user interfaces , and physiological sensors for real-world challenges. Key trends in his work include ubiquitous health monitoring (e.g., preterm infants), wearable technology , and innovative interaction design . Articles like GaussBits and NFCStack demonstrate his focus on magnetic and RFID-based tangible systems . Scientific awards include the ACM CHI 2013 Best Paper Award , 2014 Honorable Mentions , and the ACM SIGGRAPH Asia 2012 Emerging Technologies Prize . He mentors passion-driven projects in user interface design and embedded systems , emphasizing technical rigor and creativity. His STRAP project (2020–2025) addresses heart disease prevention via big data and AI . Labs and teams include the Future Everyday Group and Signal Processing Systems Group , with collaborations across healthcare , education , and technology startups . His work aligns with UN Sustainable Development Goals , particularly good health and well-being .
Berit Greinke is an Assistant Professor of Wearable Computing at the Berlin University of the Arts (UdK) and the Einstein Center Digital Future (ECDF) since 2018, previously serving as a researcher at UdK's Design Research Lab and DFKI (2016-2018). Her academic foundation includes a PhD from Queen Mary University of London (2017), an MA from Central St Martins (2009), and a Diploma from Weissensee Academy of Art Berlin (2007). Her educational trajectory: PhD in Media and Arts Technology, Queen Mary University of London (2017) MA in Design for Textile Futures, Central St Martins College of Art and Design (2009) Diploma in Textile and Surface Design, Berlin Weissensee School of Art (2007) Greinke's research pioneers the convergence of craft, textile design, and digital technology, with core expertise in electronic textiles and smart materials. She investigates metamaterial-based 'metatextiles' for electromagnetic applications and explores transdisciplinary collaboration between designers and scientists, particularly regarding 'negative data' in creative and scientific workflows. Her current UdK work focuses on four interconnected domains: performing materials for expressive textile/fashion design; multi-modal sensing converting visual processes into haptic/audible experiences; micro-to-macro material design spanning nanostructures to final products; and transdisciplinary processes for technology-art-science collaboration. Analysis of her 2020-2025 publications reveals dominant trends in sustainable textile electronics, with emphasis on knitted/folded sensor structures, origami-inspired capacitive shape estimation, and social sustainability in e-textile communities. Her work uniquely bridges fundamental material science (e.g., textile metamaterials) with artistic applications (e.g., interactive orchestra garments) and industrial production challenges. Berit Greinke supervises PhD students including Giorgia Petri. Her junior professorship is co-financed by SAP under a public-private partnership model, supporting projects like WEAR (Wearable technologists engage with artists for responsible innovation) and STELEC (Sustainable Textile Electronics), which emphasize ethical co-design and industry-academia collaboration. She leads research within UdK's Institute for Product and Process Design and collaborates with the Design Research Lab (formerly part of Connected Textiles group), focusing on sustainable industrial production of electronic clothing and transdisciplinary innovation frameworks.
Ciprian Cimpan is an Associate Professor at the Department of Green Technology (IGT), University of Southern Denmark, and a key member of the SDU Climate Cluster and SDU Life Cycle Engineering. His research focuses on Circular Economy , Industrial Ecology , Waste and Resources Management , and Life Cycle Assessment , with a strong emphasis on sustainable growth and resource efficiency. Postdoctoral Fellow, Norwegian University of Science and Technology (2019–2021) His recent publications highlight applications of LCA in evaluating additive manufacturing , plastic packaging , and critical material recycling within green transition contexts. He also investigates systemic challenges in textile waste , ICT product obsolescence , and rebound effects in reuse practices . Scientific awards include the DANROAD Prize (2025) for innovative drug recycling. He supervises PhD student Bubinek R. and teaches courses on Eco-efficient Engineering , Waste Management , and Solid Waste Processing .
Leila Deravi is an Associate Professor of Chemistry and Chemical Biology at Northeastern University's College of Science, affiliated with the Barnett Institute of Chemical and Biological Analysis and the Institute for Chemical Imaging of Living Systems. Her research focuses on biomaterials design, particularly protein-based systems inspired by biological mechanisms in cephalopods and extracellular matrices. She leads the Biomaterials Design Group, which explores applications ranging from tissue engineering to wearable electronics. Her work integrates bioanalytical chemistry, materials science, and design, with projects including cephalopod pigment studies for sunscreen development and bionic material fabrication using additive manufacturing. She has secured significant grants, including an NSF award and U.S. Army funding, and co-founded Seaspire Skincare, leveraging marine biotechnology. Key Research Themes: Bio-inspired materials, cephalopod pigmentation, biomedical textiles, and sustainable cosmetics Notable Collaborations: Cross-disciplinary projects with engineering, biology, and entrepreneurship Innovation: Development of UV-sensing devices and eco-friendly skincare products Deravi's educational contributions include innovative chemistry courses where students design cosmetics, bridging theory and practical application. Her lab's work frequently appears in media discussions on skincare trends and environmental chemistry advancements.
Mark D. Gross is a Professor of Computer Science and Director of the ATLAS Institute at the University of Colorado Boulder, where he leads an interdisciplinary hub for creativity and invention. His academic journey began at MIT with BS and PhD degrees, followed by faculty roles at Carnegie Mellon University (2004-2013), University of Washington Seattle (1999-2004), and CU-Boulder (1990-1999, 2014-present). As co-founder of Modular Robotics Incorporated and Blank Slate Systems LLC, he bridges academia and entrepreneurship. Education: BS and PhD in Computer Science from MIT Gross’ research spans design methods, modular robotics, computational design tools, and tangible interaction. He pioneered sketch recognition software like 'The Electronic Cocktail Napkin' and explores physical computing through projects such as shape-changing interfaces, interactive construction kits, and augmented reality systems. His work integrates IoT, digital fabrication, and educational technology. Recent publications highlight innovations in AR/VR collaboration, shape-changing robotics, and interactive fabrication. Key themes include climate communication through data physicalization, AI-driven creative systems, and soft robotics for dynamic interfaces. Despite no explicit awards listed, his career demonstrates sustained impact through ACM conference leadership (Creativity and Cognition 2009, TEI 2011) and industry partnerships. Gross’ prior industry experience includes positions at Atari Cambridge Research and Logo Computer Systems. His lab at ATLAS fosters radical creativity through projects like PaperMech, DynaBlock, and WearAir, emphasizing hands-on learning and cross-disciplinary experimentation.
Caroline Schauer is a Professor and Department Head in Materials Science and Engineering at Drexel University's College of Engineering. Holding the Margaret C. Burns Chair in Engineering, she has been tenured since 2010 and promoted to full professor in 2018. BS (1991), MS (1994), PhD (1997) in Chemistry from SUNY Stony Brook Postdoctoral fellowships at University of Twente, Tufts University, and Naval Research Laboratory Her research focuses on natural polymer processing , electrospun nanoyarns , biodegradable biomaterials , and concrete self-healing technologies . Recent work explores MICCP (microbially induced calcium carbonate precipitation) for sustainable infrastructure and collagen-based nanoyarns for tissue engineering. Key trends in her publications include bio-inspired fiber design, antimicrobial material development, and environmental applications. Notable contributions span smart textiles , wound healing dressings , and conductive polymer composites . Fellow, American Institute for Medical and Biological Engineering (AIMBE), 2021 ELATES Fellow, 2017-2018 Drexel Harold M. Myers Award for Distinguished Service, 2018 Drexel Fellowships Office Faculty Mentor Award, 2016 Schauer has secured funding from NSF , DOD , PA Innovation Fellowship , and the US Department of Education . She leads the Natural Materials and Polymer Processing Group and serves as President of the Fiber Society since 2023.
Klas Hjort is a Professor of Materials Science at Uppsala University's Ångström Laboratory , specializing in Microsystems Technology . He leads the microsystems technology program and has pioneered research in heterogeneous microsystems on stainless steel, flexible foils, and elastic substrates for biomedical applications and wireless sensor/actuator systems . Key projects: SSF robotic textiles , PERSIMMON smart patches Research themes: Microfluidic actuation , Liquid metal patterning , Stretchable electronics His recent publications focus on soft robotics , smart patches , and high-pressure microfluidic systems , with keywords spanning Microfluidics , Biomedical Engineering , and Stretchable Electronics . He collaborates extensively in robotic textiles , microvalve design , and liquid metal composites . Contact: klas.hjort@angstrom.uu.se
Michael Haller is a Full Professor at the Faculty of Engineering, Free University of Bozen-Bolzano, Italy, where he serves as founder and director of the Media Interaction Lab. Based at NOI Techpark, his work focuses on next-generation human-computer interfaces, leading a team of over 10 researchers and students in developing innovative interaction technologies for automotive and wearable applications. He earned his Dipl.-Ing. (1997), Dr. techn. (2001), and Habilitation (2007) degrees from Johannes Kepler University of Linz, Austria. Haller's research centers on Human-Computer Interaction with specialized expertise in Smart Textile Interfaces, Physical Prototyping, and Ubiquitous Computing. His lab pioneers user-centered design of next-generation interfaces through industry collaborations with BMW, KTM, SEFAR, and Tratter Engineering. Current work emphasizes sustainable materials for flexible sensors, touchless interaction, and reducing plastic components in automotive interfaces while maintaining ergonomic functionality. His 15 most recent publications (2023-2025) demonstrate a clear trajectory toward sustainable sensor technologies, particularly biodegradable substrates (wood, animal-based, stone, gelatin) for temperature and pressure sensing. These works bridge materials science with HCI, targeting automotive interfaces, health monitoring, and eco-fashion through textile-based solutions that prioritize environmental sustainability without sacrificing performance. His scientific accolades include: Erwin Schrödinger Fellowship Award Google Research Award Europrix Top Talent Award Best ACM SIGGRAPH Emerging Technologies Award Microsoft Imagine Cup 7 Best Paper and Honorable Mention Awards at ACM CHI and ACM UIST Haller directs major research projects including SmartCover (2024-2026) for developing smart laminated dashboards that replace plastic components with gesture-based textile interfaces, and iPlayground (2024-2026) establishing an industrial-scale smart textile lab. He mentors researchers in prototyping and empirical evaluation, with industry grants supporting the development of washable touchless fabrics and next-generation vehicle interfaces. His work bridges academic research and commercial product development through direct industry partnerships. The Media Interaction Lab operates from NOI Techpark with industrial knitting/sewing machines, confocal microscopes for surface analysis, and a collaborative Idea Space for rapid prototyping. Current infrastructure enables development of warp-knitted smart textiles for automotive consoles and sustainable fashion applications, focusing on reducing plastic waste while creating intuitive touchless interaction experiences through magnetoresistive and inductive sensing technologies.
Dr. Richard Venditti is the Elis-Signe Olsson Professor of Pulp and Paper Science and Technology at North Carolina State University's Department of Forest Biomaterials, College of Natural Resources. He specializes in sustainable bioproducts, recycling technologies, and environmental life cycle analysis (LCA). His research focuses on transforming renewable plant-based resources into eco-friendly materials, addressing challenges like microfiber pollution and decarbonization in the paper industry. Education: PhD in Chemical Engineering, Princeton University (1994) B.S. in Pulp and Paper Technology and Chemical Engineering, NC State University (1988) Research Interests: Biodegradation of materials, fiber processing innovations, LCA of bioproducts, and upcycling waste into high-value products. Dr. Venditti leads high-impact projects, including a USDA-funded initiative to educate diverse students in bioproduct industries and a multi-organization study on microplastic fate in the environment. He has authored over 200 peer-reviewed publications and holds patents in sustainable technologies. Grants & Funding: Key projects include a $2.75M USDA program, a $2.99M NSF grant for eco-manufacturing of soft electronics, and a $1.64M DOE project on AI-driven municipal waste analysis. Awards & Recognition: TAPPI Fellow (2012), Fulbright Specialist (2009), and ACAAGS Advocacy Award (2010) for promoting diversity in graduate education. He directs the Pulp and Paper Workshop (co-sponsored by TAPPI) and teaches courses like Environmental LCA and Unit Operations. His lab explores innovations in dewatering, biomass valorization, and textile waste upcycling.
Dr. Anna Baldycheva is a Senior Lecturer in Electronic Engineering at the University of Exeter, within the College of Engineering, Mathematics and Physical Sciences. She leads the interdisciplinary STEMM Laboratory, focusing on applied R&D in smart materials, photonics, AI, and IoT. With prior research experience at MIT, Trinity College Dublin, and Tyndall National Institute, she has established herself as an internationally recognized innovator and entrepreneur in emerging technologies. PhD in Electronic and Electrical Engineering, Trinity College Dublin (2008–2012) BSc (Hons) in Physics, St. Petersburg State University (2003–2008) Postgraduate Certificate in Academic Practice, University of Exeter (2016–2017) Postgraduate Certificate in Technology Management, Smurfit Business School (2009–2010) Her research spans Nano-Engineering, Opto-Electronics, Photonics, AI, and IoT , with a strong emphasis on real-world applications. She pioneers work in fluid opto-electronics , graphene nanocoatings , and AI-driven emotion recognition and early cancer detection . Her lab develops smart composite materials for flexible electronics, e-textiles, and structural applications, integrating machine learning into healthcare, education, and communications systems. The recent publications highlight a strong trend toward applied interdisciplinary innovation , combining materials science with AI and photonics for healthcare diagnostics, energy-efficient computing, and educational technology. Her work frequently bridges fundamental physics with commercialization potential, as seen in spin-out technologies like GSurf and the Electronic-Nose for lung cancer detection. Fellow, Royal Microscopical Society (RMS) Fellow, Higher Education Academy (FHEA) Expert, Future and Emerging Technologies, European Commission Featured in Forbes and Forbes Tech Council Editor-in-Chief, InSTEMM Journal Associate Editor, Nature Scientific Reports and Discover Nano Trustee, Royal Microscopical Society Founder, STEMM Global Scientific Society Founder, It’s Her! Women in STEMM Initiative Dr. Baldycheva actively supervises PhD students and has secured industrial collaborations with organizations such as Qinetiq and Lumentum. She leads multiple outreach initiatives, including STEMM Junior for underprivileged children, and serves on the committee for the Jocelyn Bell Brunel PhD Scholarship. She has raised significant research funding through national and international grants, though specific grant names are not listed. She leads the STEMM Laboratory , a multidisciplinary research group with divisions in Smart Composite Materials, Machine Learning & AI, and Opto-Electronics & Photonics. The lab emphasizes industry collaboration and technology transfer, having produced a university spin-out (GSurf) and multiple media-highlighted innovations.
Shanhui Fan is the Joseph and Hon Mai Goodman Professor of the School of Engineering at Stanford University, with a courtesy appointment in Applied Physics and a Senior Fellowship at the Precourt Institute for Energy. He directs the Edward L. Ginzton Laboratory and holds a Ph.D. in theoretical condensed matter physics from MIT. His research focuses on nanophotonics, including photonic crystals, metamaterials, quantum optics, and radiative cooling technologies. He has published over 700 papers and holds 80+ patents, with awards including the R. W. Wood Prize and membership in the National Academies of Sciences and Engineering. Education: B.Sc. (Physics, 1992) University of Science and Technology of China; Ph.D. (Physics, 1997) MIT. Affiliations: Edward L. Ginzton Laboratory, Department of Electrical Engineering, Stanford University. Research Highlights: Radiative cooling systems (e.g., subambient cooling), photonic synthetic dimensions, quantum optics with free electrons, and energy-efficient materials. His work bridges theoretical and experimental photonics, with applications in renewable energy, imaging, and quantum technologies. Recent advancements include nighttime electric power generation via radiative cooling and nonreciprocal metasurface devices. He advises over 20 graduate students and postdocs, contributing to breakthroughs in photonics and energy systems. Awards & Honors: R. W. Wood Prize (Optica, 2022) Simons Investigator in Physics (2021) Member, National Academy of Sciences (2025) Member, National Academy of Engineering (2024) Grants & Teams: Leads the Light-Matters Initiative (LMI EFRC) and co-founded Skycool Systems and Flexcompute. His lab collaborates on radiative cooling textiles and photonic neural networks.
Courtney N. Reed is a Lecturer in Digital Technologies at Loughborough University London, where she joined in November 2023. She maintains a dual role as a visiting research fellow at the Max Planck Institute for Informatics. Her academic journey includes a BMus in Electronic Production and Design from Berklee College of Music (2016), followed by an MSc (2018) and PhD (2023) in Computer Science from Queen Mary University of London. Prior to her current position, she completed postdoctoral research at both the Max Planck Institute for Informatics and King's College London. Bachelor of Music: Electronic Production and Design, Berklee College of Music (2016) Master of Science: Computer Science, Queen Mary University of London (2018) Doctor of Philosophy: Computer Science, Queen Mary University of London (2023) Dr. Reed's research explores the entangled relationships between humans, bodies, instruments, and technology in music interaction, with particular focus on vocal electromyography (VoxEMG) and the vocalist-voice relationship. Her work incorporates feminist and post-human theories to examine sociopolitical contexts within arts technology, aiming to design for creativity while acknowledging individual, messy bodies in artistic practice. She has developed an open-source platform for vocal electromyography to investigate how biosignal feedback changes understanding and perception of the body in vocal performance. Her interdisciplinary approach bridges music technology, human-computer interaction, and embodied interaction studies. Analysis of Dr. Reed's recent publications (2023-2025) reveals a strong thematic focus on embodied interaction in music technology, with particular emphasis on vocal performance, biosignal feedback, and the philosophical underpinnings of digital instrument design. Her work consistently integrates theoretical frameworks like Karen Barad's agential realism with practical applications in digital musical instruments. Key trends include the exploration of ambiguity in data representation, the sociocultural dimensions of timbre in instrument design, and the development of novel methodologies for understanding embodied musical experiences through micro-phenomenology and ethnographic approaches. ACM SIGCHI Outstanding Dissertation Award (2024) for her thesis 'Imagining & Sensing: Understanding and Extending the Vocalist-Voice Relationship Through Biosignal Feedback' Best Newcomer Award at Loughborough University London's Community Awards Celebration (2024) Dr. Reed actively contributes to the academic community through conference organization and leadership roles. She serves as Member-at-Large on the NIME Board, previously chaired papers for NIME 2024, and co-organized the IBM SkillsBuild Sprint at Loughborough London. She has also chaired sessions at the ACM TEI Conference and co-chaired the Student Design Competition. Her collaborative work spans multiple institutions and includes significant contributions to interdisciplinary projects that bridge music, technology, and human experience. She has been instrumental in developing the senSInt research group and the RaveNET wearable network project. Dr. Reed leads the senSInt research group which focuses on sensorimotor interaction in music and performance contexts. The group develops innovative technologies including the VoxEMG platform for vocal electromyography, the Bones anti-corset for vocal performance, and the RaveNET network of wearable biosensing nodes. These projects explore the intersection of biosignals, embodied interaction, and musical expression, creating novel frameworks for understanding how technology mediates human creativity and performance. The group frequently collaborates with musicians, technologists, and theorists to develop and test these systems in real-world performance contexts.