Dr. Shirley Coyle is an Assistant Professor in the School of Electronic Engineering at Dublin City University (DCU) and Programme Chair for the BSc Global Challenges. She holds a BEng in Electronic Engineering from DCU (2000) and a PhD in Biomedical Engineering from NUI Maynooth (2005). Her career includes roles as a Telecoms Engineer at Siemens, Research Fellow at the National Centre for Sensor Research, and Team Leader of Wearable Sensors in the INSIGHT Centre for Data Analytics. She also studied part-time at the Grafton Academy for Fashion Design and later founded a consultancy in wearable technologies. Her research focuses on smart garments, wearable sensors, and sustainable textiles, with applications in healthcare, sports performance, and S.T.E.A.M. integration. Key interests include developing wearable chemical sensors, energy-autonomous sensing systems, and IoT-enabled rehabilitation devices. She has pioneered work on wearable sensors for monitoring chronic diseases, athlete training, and home rehabilitation using VR. Dr. Coyle’s work spans interdisciplinary collaboration, combining biomedical engineering with textile design. Her contributions include innovations in electrospun textiles, self-powered sensors, and sensor integration with microfluidics. She has held leadership roles in DCU’s Governing Authority and promotes STEM education through design-focused initiatives.
Martin Kaltenbrunner is a Professor in the Department of Soft Matter Physics at the Faculty of Engineering & Natural Sciences, Johannes Kepler University Linz (JKU). He leads the LIT Soft Materials Lab and is affiliated with the Linz Institute of Technology (LIT), focusing on sustainable material innovations for next-generation electronics. His research spans biodegradable flexible electronics, energy-autonomous systems, and eco-friendly substrates. Key interests include perovskite solar cells for healthcare robotics, mycelium-based electronic skins, and algal polysaccharide conductive nanocomposites. He pioneers sustainable alternatives using organic materials to replace conventional electronics in soft robotics and wearable devices. Recent publications (2024-2025) emphasize circular economy principles, featuring mycelium substrates for PCBs, algae-derived transistors, and passivation techniques for high-efficiency solar cells. The work integrates materials science with environmental sustainability, targeting applications in medical sensors and autonomous robotics. Professor Kaltenbrunner has supervised 18 research works and leads multiple major grants: Personalized Sustainable Smart Patch Omnificence (Persimmon) - EU project (2024-2028) Mycelium-based substrate for sustainable flexible PCBs (MycoSub) - EU project (2024-2025) Intelligent cellulose-based sensors - FFG project (2022-2025) Metasurface Fabrication (META-FAB) - FFG project (2024-2027) Nadelholzreststoffe for mycelium packaging (MycoSoft) - FFG project (2023-2026) He directs the LIT Soft Materials Lab, which develops biodegradable gels, fungal biomaterials, and sawmill byproduct-based insulation. The lab collaborates across JKU's engineering and natural sciences divisions to advance sustainable electronics through interdisciplinary projects like Persimmon and MycoSub, emphasizing real-world deployment of eco-friendly technologies.
Gajanan S. Bhat is a Professor and Department Head at the University of Georgia within the College of Family and Consumer Sciences . He earned his PhD in Textile and Polymer Engineering from Georgia Tech in 1990. Education : PhD (Georgia Tech, 1990) Professional Journey : Joining the University of Tennessee, Knoxville (UTK) in 1990, became Director of UTNRL , researching nanofibers, sustainable materials, and high-performance fibers. Recently transitioned to UGA as department head. Dr. Bhat's research focuses on nonwovens (meltblown, spunmelt), sustainable materials (cotton-based composites, biodegradable polymers), and high-performance fibers (carbon fibers, ballistic materials). His work bridges nanotechnology and industrial applications , addressing challenges in filtration , protective fabrics , and recycling . Recent publications highlight advancements in thermal conductivity modeling , flexible sensors , and ecological composites . His research has expanded into flushable nonwovens , PLA-based filters , and stretchable cotton textiles . Scientific Recognition : Outstanding Young Engineering Alumni, Georgia Tech (1996) Distinguished Achievement Award, The Fiber Society (1999) Technical Achievement Award, TAPPI (2014) He serves on editorial boards of journals like International Journal of Textile Engineering and Processes and Journal of Nanomaterials and Molecular Nanotechnology . Active in professional societies including The Fiber Society , INDA , and Textile Institute .
Elisabeth Prince is an Assistant Professor at the University of Waterloo, specializing in polymer chemistry and biomaterials. Her research focuses on developing advanced materials for biomedical applications, sustainable materials, and microfluidic technologies. Key areas include conductive hydrogels, cleavable polymers for recyclability, and biomimetic systems for drug delivery and cancer therapy. Her work bridges disciplines such as materials science, nanotechnology, and biomedical engineering. Recent studies involve applications in strain-stiffening hydrogels, filamentous aerogels for electromagnetic shielding, and microfluidic platforms for organoid production. These innovations aim to address challenges in regenerative medicine, environmental sustainability, and personalized cancer treatments. No scientific awards are listed in the provided materials. Research activities include collaborations on 3D-printed microfluidic devices and nanofibrillar hydrogels mimicking biological systems. No advising relationships or grants are explicitly mentioned in the text.
Lukas Hiendlmeier is a Researcher at the Technical University of Munich, affiliated with the Munich Institute of Biomedical Engineering (MIBE) and the Associate Professorship of Neuroelectronics led by Prof. Bernhard Wolfrum. He holds a Master of Science in Mechanical Engineering from TUM. His research focuses on advanced fabrication technologies such as 3D printing, laser micromachining, and polymer material science, with applications in neuroelectronics and biomedical devices. Hiendlmeier’s work emphasizes developing self-folding bioelectronic interfaces, flexible electrodes, and implantable neural devices for peripheral nerve interfacing. His contributions include innovations in 4D printing techniques, thermoformed materials, and origami-inspired electrode designs. He collaborates on projects involving cell manipulation, microfluidic lab-on-a-chip systems, and closed-loop neural stimulation systems. Publications span topics like self-folding bioelectronics, flexible sensor arrays, and nanorobotics, showcasing expertise in materials science and biomedical engineering. His research bridges fundamental science and translational applications, addressing challenges in neural prosthetics, wearable diagnostics, and tissue engineering. Hiendlmeier is actively involved in the neuroTUM initiative and contributes to interdisciplinary teams at TUM, focusing on advancing neurotechnology through innovative fabrication methods and biomaterials.
Prof. Silvia Vignolini is a leading researcher in sustainable and bio-inspired materials. Since January 2023, she has served as Director at the Max Planck Institute of Colloids and Interfaces , where she leads the department of Sustainable and Bio-inspired Materials . Her academic career includes a Lecturer in Physics at University College London (2013-2017) and a Professor of Biomaterials and Sustainability at the University of Cambridge (2020-2022). Education: University of Florence (Physics, PhD) Postdoctoral Research: University of Florence , University of Cambridge Her research bridges chemistry , soft matter physics , optics , and biology , focusing on the self-assembly of natural materials into functional architectures. She pioneered work on cellulose-based photonic materials with applications in displays, pigments, and radiative cooling. The selected articles highlight her work on cellulose nanocrystals , structural coloration , and sustainable fabrication techniques . Key trends include mechanochromic hydroxypropyl cellulose systems, bio-inspired light management, and applications in microalgae growth and bacterial symbiosis. Scientific Awards : Philip Leverhululme Prize (2019) ACS Lectureship in Sustainable Chemistry (2018) Ipazia Prize for Women in Science (2012) PhD Thesis Award (University of Florence, 2009) At the Max Planck Institute, her interdisciplinary research group explores bio-inspired design principles for sustainable materials, combining experimental and computational approaches to create functional materials from natural resources.
Wan Shou is an Assistant Professor in the Department of Mechanical Engineering at the University of Arkansas. His research focuses on multiscale manufacturing, advanced materials, and functional devices, with applications in wearables, robotics, and sustainable technologies. Ph.D., Mechanical Engineering, Missouri University of Science and Technology M.S., Mechanical Engineering, University of Louisiana at Lafayette B.E., Textile Engineering, Tianjin Polytechnic University, China Dr. Shou’s research spans laser-based manufacturing , nanomanufacturing , machine learning-assisted processes , and bioresorbable electronics . He explores 3D printing of polymer and metal composites, energy materials , and functional textiles for wearable sensors and environmental applications. Recent publications highlight his work in additive manufacturing , computational design of composites, and self-powered sensing systems . His team integrates machine learning with materials discovery to optimize performance. Editor’s pick of Science Magazine US Patent 11,752,700: Data-driven material formulation US Patent 11,993,850: Laser-assisted nanoparticle printing Dr. Shou’s patents and publications reflect a commitment to innovative manufacturing and environmentally conscious design . His work bridges materials science , robotics , and smart systems , advancing energy and water technologies.
Susie Dai is a Professor in the Department of Chemical and Biomedical Engineering at the University of Missouri, with a laboratory located at the Bond Life Sciences Center. Her research bridges chemistry, biology, and engineering to address critical environmental and sustainability challenges. Education: PhD in Chemistry from Duke University; Certificate in Biomedical Engineering from Duke University; Certificate in Regulatory Science from Texas A&M University; BS in Chemistry from Fudan University Dr. Dai specializes in biological and material engineering, carbon waste conversion, contaminant remediation, and synthetic biology. She is developing RAPIMER, a lignin-based fungal scaffold for PFAS removal, and pioneering electro-microbial systems to convert CO2 into bioplastics and biofuels. Her work focuses on scalable, sustainable solutions for environmental pollutants and carbon utilization. Recent research trends include creating biomimetic materials for sustainable packaging, optimizing lignocellulosic biorefineries, and designing lignin-derived photocatalysts. She leads projects funded by Tito's Handmade Vodka's philanthropic arm for PFAS remediation and collaborates with the NSF Engineering Research Center CURB at Washington University in St. Louis. At Mizzou, Dai integrates engineering and life sciences, leveraging both Mizzou Engineering and Bond Life Sciences Center's resources. Her interdisciplinary approach combines electrochemistry, microbial engineering, and social impact analysis to advance circular bioeconomy solutions.
Abdon Pena-Francesch is an Assistant Professor in the Department of Materials Science and Engineering at the University of Michigan. He is also affiliated with the Macromolecular Science and Engineering Program, Chemical Engineering, and the Michigan Robotics Institute. His interdisciplinary research integrates biomaterials science, polymer chemistry, soft matter physics, and nanotechnology to develop programmable soft materials for applications in healthcare, robotics, and environmental science. Education: Ph.D. in Engineering Science and Mechanics, The Pennsylvania State University, 2017 M.Sc. in Chemical Engineering, Institut Químic de Sarrià (Barcelona, Spain), 2013 B.Sc. in Mechanical Engineering, Institut Químic de Sarrià (Barcelona, Spain), 2011 Research Interests: His work focuses on bioinspired materials , soft robotics , self-healing polymers , and biodegradable microrobots . By engineering molecular and nanoscale structures, his lab designs materials with programmable properties for soft robotic systems and biomedical devices. The group emphasizes both fundamental science and translational applications, including tissue repair, actuation, and environmental sensing. Awards and Honors: Humboldt Research Fellowship for Postdoctoral Researchers (2018–2020) Alumni Association Dissertation Award, Penn State University (2017) Rustum and Della Roy Innovation in Materials Research Award (2016) Materials Research Society Graduate Student Award (2016) First Prize, Penn State ESM Graduate Research Symposium (2015) AGAUR MOBINT Fellowship, Government of Catalunya (2012) Labs and Affiliations: He leads the Bioinspired Materials Lab , an interdisciplinary group within the University of Michigan’s Materials Science & Engineering Department. The lab collaborates with the Macromolecular Science & Engineering Program, Chemical Engineering, and the Michigan Robotics Institute.
Dr. Miaoqiang Lyu is a Research Fellow at the School of Chemical Engineering , The University of Queensland . His work focuses on lead-free perovskites , flexible energy storage , and optoelectronic devices . Research Interests : Designing low-toxicity and stable semiconducting lead-free perovskites for solar energy conversion Developing flexible energy storage devices for Internet-of-Things (IoT) sensors Advancing zinc batteries and aqueous electrolyte systems Photocatalytic hydrogen production and CO2 reduction Recent Article Trends : Focus on 2D/3D heterostructures, interstitial metal doping, and solvent-engineered interfaces Applications in indoor photovoltaics, artificial synaptic functions, and wearable electronics Lead-free perovskites for resistive memory and energy storage Scientific Awards : ARC DECRA Fellow Advance Queensland Industry Research Fellow CRC for Polymers grant Supervision & Funding : Principal advisor for two PhD projects on lead-free perovskites and flexible batteries Current grants: Enabling low-toxicity perovskites for indoor photovoltaics (2026-2030), Printable zinc ion batteries (2025-2026) Labs & Collaborations : Affiliated with the Nanomaterials Centre at UQ Collaborations with Professor Lianzhou Wang , Professor Ian Gentle , and Associate Professor Ruth Knibbe
Boxin Zhao is a Professor and University of Waterloo Endowed Chair in Nanotechnology in the Department of Chemical Engineering at the University of Waterloo. His research spans surface science, bionanomaterials, and biomimetic adhesion, with a focus on advanced polymers, hydrogels, and smart materials for biomedical and industrial applications. He leads the Surface Science and Bio-nanomaterials Laboratory Group, which develops innovative materials such as self-cleaning surfaces and antimicrobial coatings. Education: Doctorate in Chemical Engineering, McMaster University (2004); Master's from Chinese Academy of Sciences (1999); Bachelor's in Mineral Engineering from Central South University (1996). He has held prestigious fellowships, including the NSERC Postdoctoral Fellowship and IMMS Research Fellow at UC Santa Barbara and Los Alamos Lab. Research Interests: Biomimetic adhesion, soft robotics, polymer composites, and advanced manufacturing. Notable contributions include gecko-inspired adhesives, self-healing hydrogels, and conductive polymers for electronics. Recent work focuses on 3D-printed medical hydrogels, soft robotic devices, and microplastic degradation. His lab collaborates with industries like Proctor & Gamble and 3M, addressing real-world challenges in materials science and biomedical engineering. Awards: 1996 IET Scholarship, 2005 NSERC Postdoctoral Fellowship, 2007 IMMS Research Fellow. Teaching: CHE 313 (Heat/Mass Transfer), CHE 612 (Interfacial Phenomena). Lab Facilities: Advanced equipment for nanomaterial synthesis, surface characterization, and soft robotics prototyping.
Laura Devendorf is an Associate Professor at the ATLAS Institute and Department of Information Science at the University of Colorado Boulder. As director of the Unstable Design Lab, she bridges human-computer interaction (HCI), computational design, and craft practices through smart textiles and collaborative innovation. BFA in Studio Art and BS in Computer Science from University of California Santa Barbara PhD in Information Science from UC Berkeley Research Interests focus on smart textiles as a medium to challenge human-machine relationships, with projects exploring: Computational design tools for weaving Gendered labor in technology Biodegradable materials for wearables Interdisciplinary collaboration with craftspeople Speculative design practices Human-fungi relationships Recent Research Trends demonstrate her leadership in: AdaCAD software for parametric weaving Desktop biofiber spinning systems Interactive hygromorphic textiles Material-led HCI frameworks Scientific Recognition : Best Pictorial Award (TEI '23) Best Paper Honorable Mention (DIS ’22) Honorable Mention (CHI EA ’20) Best Pictorial Honorable Mention (DIS ’22) Collaborations & Grants : NSF CAREER Grant (2020) for smart textiles innovation Extensive partnerships with Mirela Alistar, Kristina Andersen, and others Advancing open-source tools like AdaCAD and Desktop Bio-spinning
Sam Emaminejad is an Associate Professor in the Department of Electrical and Computer Engineering at the Henry Samueli School of Engineering and Applied Science, University of California Los Angeles (UCLA). His research focuses on developing advanced wearable bioelectronic systems for continuous, noninvasive health monitoring and personalized therapeutics. Key Research Areas: Biomarker detection via flexible sensors Microfluidic and ferrobotic systems Stress and drug level monitoring Biodegradable and breathable wearable materials Recent Trends: Analysis of sweat and interstitial fluids using microneedles, aerogel skins, and programmable microfluidics. Machine learning integration for physiological evaluation is prominent. Awards & Collaborations: While specific awards aren't listed, he collaborates with major UCLA Health and Engineering faculty, including Ali Khademhosseini and Dino Di Carlo, on projects funded by NIH T32 grants and institutional fellowship programs. Grants & Labs: Leads projects in NIH-funded wearable sensor research, including the development of autonomous systems for cystic fibrosis and glucose monitoring. His lab explores ferrobotic swarms and hydrogel-based interfaces for clinical and consumer applications.
Jindal Shah is a Professor and holds the Anadarko Petroleum Chair in Chemical Engineering at Oklahoma State University, where he also serves as the Graduate Program Director. He is affiliated with the Department of Chemical Engineering within the College of Engineering at Oklahoma State University. Dr. Shah received his educational training from prestigious institutions worldwide. He earned his Ph.D. in Chemical Engineering from the University of Notre Dame in 2005, followed by an M.S. in Environmental Engineering from the University of Cincinnati in 1999, and completed his undergraduate education with a B.Tech. in Chemical Engineering from the Indian Institute of Technology (IIT) Bombay in 1996. Dr. Shah's research focuses on the application of molecular simulation methodologies to understand molecular-level interactions that give rise to macroscopic phenomena. His primary research interests include Monte Carlo and Molecular Dynamics Simulations, Phase Equilibria, Ionic liquids, and Dye-sensitized solar cells. A significant portion of his work centers on designing novel biodegradable ionic liquids with properties suitable for chemical processes, with applications in next-generation batteries and carbon capture. He also investigates molecular-level interactions responsible for device efficiency in dye-sensitized solar cells to rationally design novel dye molecules. Additionally, Dr. Shah employs data science and machine learning techniques to correlate properties of ionic liquids and generate new molecules with desired properties. An analysis of Dr. Shah's recent publications reveals a strong focus on ionic liquids and their applications in energy storage and carbon capture technologies. His work consistently bridges fundamental molecular-level understanding with practical applications, particularly in developing electrolytes for batteries and CO2 capture systems. A notable trend is the integration of machine learning techniques with traditional molecular simulation methods to accelerate materials discovery and optimization. His research demonstrates a progression from fundamental molecular simulations toward applied technologies with significant environmental impact, particularly in climate action (SDG 13) and affordable clean energy (SDG 7). Dr. Shah has secured substantial research funding from multiple prestigious sources including the National Science Foundation, U.S. Department of Energy, National Aeronautics and Space Administration, and industry partners. His funded projects include 'Collaborative Research: Cyber Training-Implementation, Medium, Establishing Sustainable Ecosystem for Computational Molecular Science Training & Education' (NSF), 'Ionic Liquids for Direct Air Capture of CO2 using Electric-Field-Mediated Moisture Gradient Process' (DOE), and 'CAREER: Computation-Enabled Rational Design of Cytochrome P450 for Ionic Liquid Biodegradation' (NSF). These grants support his research in computational molecular science, CO2 capture technologies, and the development of biodegradable ionic liquids. As an educator, Dr. Shah has been actively involved in teaching graduate courses including Principles of Chemical Engineering Thermodynamics, Doctoral Thesis supervision, and specialized courses such as Machine Learning for Chemical Processes and Introduction to Chemical Process Analytics. His teaching philosophy integrates cutting-edge research with educational practice, preparing students for the computational challenges of modern chemical engineering. He has also mentored numerous doctoral students through their dissertation research, contributing to the development of the next generation of chemical engineers and computational scientists.
Dr. Hongli (Julie) Zhu is an Associate Professor in the Department of Mechanical and Industrial Engineering at Northeastern University's College of Engineering. Her research focuses on sustainable energy storage, multifunctional materials, and advanced manufacturing, with emphasis on developing environmentally friendly biomass-derived materials, all solid-state batteries, and flow batteries. She leads the ZHU Lab at Northeastern University, which is dedicated to creating safer, cheaper, and higher performance energy storage solutions while exploring multifunctional materials derived from nature. Dr. Zhu received her PhD from South China University of Technology and Western Michigan University (2004-2009). She conducted postdoctoral research at KTH Royal Institute of Technology in Sweden (2009-2011), focusing on biodegradable and renewable biomaterials from natural wood, followed by additional postdoctoral work at the University of Maryland (2012-2015), where she researched nanocellulose and energy storage. Dr. Zhu's research spans multiple disciplines at the intersection of materials science, energy storage, and sustainable manufacturing. Her work addresses critical challenges in energy storage technology, including developing all solid-state batteries, flow batteries, and high energy density battery systems. She has pioneered research in sustainable biomass-derived materials, particularly investigating cellulose, hemicellulose, and lignin for applications in bendable, implantable, and biocompatible electronics. Her lab also focuses on advanced manufacturing techniques, including high-speed roll-to-roll processing for emerging advanced materials and devices. Analysis of Dr. Zhu's publication record reveals a strong focus on next-generation battery technologies, particularly solid-state systems. Her research demonstrates significant contributions to understanding and improving lithium dendrite suppression, electrode architecture optimization, and interface stabilization in solid-state batteries. She has also made substantial advances in sustainable materials derived from natural resources, developing applications for cellulose nanostructured fibers, paper, and aerogel/hydrogel systems. MRS Communications Early Career Distinguished Presenters and JMR Distinguished Invited Speakers (2024) Selected in Stanford University List of Top 2% Scientists Worldwide (2021-2024) College of Engineering Faculty Fellow (2023) Soren Buus Outstanding Research Award (2022) Women in Materials Science, Advanced Materials (2021 and 2022) Women Scientists at the Forefront of Energy Research, ACS Energy Letters (2020) Innovator of the Year 2013, Maryland Jakob Wallenberg Scholarship, Sweden Dr. Zhu has secured significant research funding from various sources, including the National Science Foundation and Department of Energy. Her current projects include "Uncovering the mechano-electro-chemo mechanism of fresh Li in sulfide based all solid-state batteries through operando studies" (NSF), "Enabling Advanced Electrode Architecture through Printing Technique" (DOE), and "Engineering the Metal Sulfide Interface in All Solid State Batteries through Operando Study" (NSF). She collaborates with industry partners including Rogers Corporation and has developed patented technologies related to sustainable materials and energy storage. Dr. Zhu serves as Codirector of Advanced & Intelligent Manufacturing, Editor of Progress in Materials Science, and on the Editorial Advisory Board of Chemical Society Reviews. The ZHU Lab at Northeastern University is a highly interdisciplinary research group that bridges scales from the nanoscopic to macroscopic and system level. The lab's work has led to numerous patents, including "Natural fiber composites as a low-cost plastic alternative" and "Fire-retardant Nanocellulose Aerogel, and Methods of Preparation and Uses Thereof." The group focuses on making energy storage safer, cheaper, and higher performing while exploring multifunctional materials derived from nature, with particular emphasis on applying high-speed roll-to-roll manufacturing to emerging advanced materials and devices.