Reto Gieré is a Professor in the Department of Earth and Environmental Science at the University of Pennsylvania's School of Arts & Sciences. He holds editorial roles as Editor of the Journal of Petrology and Chief Editor of the European Journal of Mineralogy. His research focuses on environmental geochemistry, energy systems, mineralogical processes, and health impacts of pollutants. He has held academic positions at institutions including ETH Zürich, Purdue University, and the University of Basel. Education: PhD in Mineralogy and Petrology (ETH Zürich), Habilitation in Earth Sciences (University of Basel) Research Interests: Biogeochemistry, sustainable materials, atmospheric pollution, and global environmental change Key projects include investigations into tire-abrasion microplastics, charcoal sustainability in sub-Saharan Africa, and lead pollution dynamics in Philadelphia. He has received honors such as the Honorary Doctorate from Université de Haute-Alsace and Fellowships from major geological societies. Grants/Advising: Active in international projects like BIOCOMBUST (EU-funded biofuel research) Labs: Directs the Geochemistry Lab at UPenn, focusing on mineral-environment interactions
Dr. Liang Yu is an Adjunct Professor at Washington State University (WSU) within the College of Agricultural, Human, and Natural Resource Sciences (CAHNRS), Department of Biological Systems Engineering. He holds roles as a Guest Editor for the Journal of Fermentation (Energy Converter-Anaerobic Digestion), Faculty Senator for Non-Tenure Track Faculty, Anti-Hazing Advisory Committee member, and Review Committee member for undergraduate research scholarships at WSU. His research focuses on biorefinery-based industrial symbiosis and the circular economy, employing multi-scale mathematical modeling (molecular simulation, CFD, bioprocess control, machine learning) to optimize anaerobic digestion systems. His work aims to convert organic waste (animal manure, food waste) into renewable natural gas, fertilizers, and bioproducts. He has secured funding from the DOE and USDA, with over 60 peer-reviewed publications and five patents. Key research themes include hydrothermal pretreatment, ammonia recovery, microbial community dynamics, and techno-economic analysis. Recent articles emphasize anaerobic digestion innovation, biodesulfurization, and biohydrogen production. His contributions bridge environmental engineering, biotechnology, and sustainable systems design. Dr. Yu’s grants and patents reflect a commitment to applied sustainability solutions, with projects addressing agricultural waste valorization and energy recovery. Collaborative efforts drive his work, integrating computational modeling with experimental validation for scalable bioenergy systems.
Julie M. Goddard is a Professor of Food Science at Cornell University , affiliated with the College of Agriculture and Life Sciences and the Department of Food Science . Her research focuses on Biomaterials and Biointerfaces , with emphasis on food quality, safety, and sustainability. She leads the Goddard Research Group, which develops innovative polymeric materials and coatings for food packaging, bioprocessing, and equipment. Key projects include antimicrobial/nonfouling coatings, biocatalytic materials, and active packaging to reduce synthetic additives and food waste. Dr. Goddard holds a Bachelor of Science (1999) and Ph.D. (2008) in Food Science from Cornell University. Her work is supported by grants from USDA NIFA, NIH, NSF, and FFAR. Notable awards include the National Excellence in Multistate Research Award (2019) , APLU Junior Moulton Medal (2015) , and Institute of Food Technologists Young Scientist Award (2013) . Her research spans nonmigratory active packaging (e.g., antioxidant, antimicrobial films), biofilm inhibition , and enzyme immobilization . Recent articles highlight advancements in PETase engineering for microplastic degradation and optimization of curcumin-grafted biodegradable materials. She collaborates across disciplines, including materials science, chemical engineering, and microbiology. Labs/Teams: The Goddard Group operates in Stocking Hall, Cornell. Projects include biocatalytic packaging , hydrogen sulfide formation in canned beverages , and consumer acceptance of novel food technologies . Key grants fund exploration of bio-based materials and food safety innovations.
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.
Prof. Michael Sander is a Lecturer at ETH Zurich's Department of Environmental Systems Science, specializing in environmental organic chemistry and polymer biodegradation. His research focuses on understanding the environmental fate of synthetic polymers, soil organic matter dynamics, and microplastic contamination. He teaches courses such as 'Introduction to Environmental Organic Chemistry' and contributes to interdisciplinary studies on sustainable materials and climate change impacts. Key research areas include polymer degradation mechanisms, redox properties of peat, and the design of biodegradable agricultural materials. His work integrates analytical chemistry, biogeochemistry, and environmental engineering to address global challenges like plastic pollution and soil health. He has published extensively on topics such as microplastic analysis in soils, biodegradation pathways of polyesters, and the redox cycling of peat organic matter. Collaborative projects involve developing sustainable polymer alternatives and assessing their environmental compatibility. Sander's research emphasizes practical solutions for reducing plastic waste and enhancing soil resilience.
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.
Brian Ingalls is a Professor in the Department of Applied Mathematics and cross-appointed to Biology at the University of Waterloo. His research applies mathematical and control-theoretic approaches to biological systems, including genetic regulatory networks, microbial communities, and cellular metabolism. Institutional Affiliation: Faculty of Mathematics, University of Waterloo Contact: bingalls@uwaterloo.ca His work focuses on systems biology and synthetic biology , particularly sensitivity analysis of biochemical networks, optimal experimental design, and mathematical modeling of cellular processes. Research funding comes from NSERC and CIHR . Notable contributions include the textbook Mathematical Modeling in Systems Biology (MIT Press, 2013) and the Ingalls Quantitative Cell Biology Lab , which investigates intracellular and intercellular network dynamics through computational and experimental methods. Key Collaborations: iGEM Waterloo, Chemical Engineering, and international synthetic biology networks Advising: Mentored 15+ graduate students and postdocs across applied math, biology, and engineering fields
Tomasz Majka serves as a Lecturer at the Department of Polymer Chemistry and Technology within the Faculty of Chemical Engineering and Technology at Tadeusz Kościuszko Cracow University of Technology. His academic career spans over a decade with continuous research and teaching activities focused on polymer engineering and materials science. His educational background includes a Licentiate in Applied Chemistry (2008) and Pedagogical Preparation (2008) from State Higher Vocational School in Tarnów, followed by MSc in Plastics Technology (2010) and Dr. Eng. in Technical Sciences (2015) from Tadeusz Kościuszko Cracow University of Technology. Majka's research primarily centers on polymer processing technologies , with special emphasis on thermal analysis and flammability of polymer materials , nanocomposite development , and terminal ballistics . His work bridges fundamental polymer science with practical industrial applications, particularly in developing sustainable flame retardant systems using biobased materials like lignosulfonamides. Recent publications reveal a strong focus on circular economy approaches through polymer recycling and biodegradable material development. His scientific contributions demonstrate consistent output in high-impact journals, with a notable shift toward sustainable polymer solutions since 2020, particularly in biodegradable composites and recycling technologies. The 15 most recent publications show expertise spanning flame retardancy mechanisms, nanocomposite engineering, and sustainable polymer processing. III place at International Session of WIiTCh Krakow University of Technology Science Clubs (2010) Award in 'Sustainable Development - Scientific Debut 2010' competition (2010) Award in 'Poster about famous scientist - Norio Taniguchi' competition (2011) II Prize in B-Innovative 'Be Entrepreneurial' business plan competition (2013) Majka actively supervises the Ballistic and Flammability Research Section within WIiTCH PK Chemistry Research Club and maintains strong industry connections through numerous industrial research projects. His professional engagements include international research stays at University of Bolton (UK) and Academy of Sciences of the Czech Republic, focusing on fire testing and polymer materials innovation. He serves as a scientific advisor for several industrial projects related to polymer processing and material safety. His laboratory work spans multiple specialized facilities including thermal analysis equipment, scanning electron microscopy, and polymer processing machinery. Current research directions include developing halogen-free flame retardants from lignin derivatives, optimizing biodegradable polymer composites, and advancing recycling technologies for post-consumer plastics.
Alisa Piekny, PhD, is a Professor of Biology and Associate Dean of Research and Infrastructure at Concordia University's School of Health. Her research focuses on cytoskeleton regulation during cell division, migration, and polarity, particularly in cancer cells. She employs human cell cultures, iPSCs, and collaborative drug discovery approaches to advance anti-cancer therapies and nanotechnology-based diagnostic tools. Education: PhD (University of Calgary), Post-Doc (IMP Vienna and University of Chicago). Research interests include anillin protein dynamics, microtubule-actomyosin interactions, and nanoparticle-cell interactions. Her work bridges cell biology with translational medicine, emphasizing cytokinesis mechanisms and their hijacking in cancer. Recent publications highlight innovations in drug delivery systems, fluorescent nanoparticle imaging, and molecular tools for live-cell cytokinesis analysis. Collaborations span nanotechnology, cancer biology, and developmental biology, yielding insights into cell fate regulation and therapeutic targeting. Her research has been recognized through interdisciplinary projects at the interface of biology and materials science, with a focus on practical medical applications.
Heikki Remes serves as Associate Professor in the Department of Energy and Mechanical Engineering at Aalto University's School of Engineering, where he investigates high-performance steel structures for marine environments with emphasis on lightweight ship designs using advanced materials and manufacturing techniques. His research integrates fundamental fatigue and fracture mechanics with practical structural challenges, spanning from crystal-level material behavior to continuum-scale modeling. Key focus areas include welded joint integrity, additive manufacturing defects, and computational analysis of marine structures under extreme conditions. Recent publications reveal strong trends in fatigue assessment methodologies for complex welded geometries, experimental validation of distortion effects, and AI-enhanced damage prediction systems, reflecting his commitment to bridging theoretical mechanics with shipbuilding applications. Scientific Awards: Aalto Education Impact Award (2018) for establishing Marine Technology study programs SNAME Honorable Mention for 2018 Vice Admiral E. L. Cochrane Award Teaching Award of Aalto School of Engineering (2012) for educational tools No specific student advising or grant information appears in available sources, though his active publication record indicates ongoing research leadership. He contributes significantly to the Marine and Arctic Technology research group, driving projects on structural integrity assessment and advanced manufacturing solutions for next-generation marine vessels.
Iris Yu is an Assistant Professor in the Civil and Environmental Engineering department at the National University of Singapore (NUS) . Her research focuses on green chemistry and biomass conversion , particularly utilizing microwave-assisted processing and green solvents to transform food and biomass waste into sustainable chemicals and materials. She actively contributes to teaching courses like Green Catalysis and Circular Economy , while leading a team of researchers in biorefinery and waste valorization projects. Her scientific awards include the L'Oréal-UNESCO for Women in Science Singapore Award 2024 MIT Technology Review Innovator Under 35 (TR35) Asia Pacific 2023 Fellow of the Royal Society of Chemistry (2023–Present) Clarivate Highly Cited Researcher (Cross-Field) 2022–2023 World's Top 2% Scientist by Stanford University 2023 Yu’s research interests span biomass upcycling microwave technology bioresource utilization catalysis fundamentals green and sustainable chemistry platform chemical production . Her publications frequently address microwave-assisted biorefineries , catalytic hydrogenation mechanisms , and sustainable solvent impacts on biomass conversion. She serves on editorial boards for journals like Science of the Total Environment and ACS Sustainable Chemistry & Engineering , and mentors students in the IRIS@NUS internship program. Her lab’s work has been recognized in awards such as the Best Student Poster at SIWW2024, highlighting innovative approaches like microalgae-based food waste valorization .
Andrew P. Dicks is a Teaching Professor in the Department of Chemistry at the University of Toronto, serving as Associate Chair for Undergraduate Studies. His work focuses on transforming chemistry education through green laboratory practices, sustainable curricula, and innovative pedagogical strategies. He has spearheaded the redesign of undergraduate organic chemistry labs to emphasize microscale experiments, green chemistry principles, and collaborative learning. His research explores methods to integrate the United Nations Sustainable Development Goals into education and has been recognized with the ACS-CEI Award for an undergraduate catalytic chemistry course. Dr. Dicks’ administrative contributions include mentoring faculty and developing programs like the Chemistry Teaching Fellowship. He advocates for teaching assistant training, writing instruction, and student learning communities. His lab initiatives emphasize real-world relevance, using waste materials (e.g., McDonald’s cooking oil) and natural media (citrus juice) to demonstrate chemical principles. Notable research themes include solvent-free reactions, energy-efficient microwave techniques, and metrics for evaluating reaction greenness. His articles highlight trends in green chemistry education, pandemic-driven pedagogical adaptations, and interdisciplinary approaches to materials science. Awards include the ACS-CEI Award, reflecting his impact on advancing sustainable chemistry education globally. Dr. Dicks also champions humor and puzzles in science communication to engage learners and foster a culture of curiosity.
Jouni Paltakari is a Professor in Bioproducts and Biosystems at Aalto University. His research focuses on paper converting and packaging technology, with particular interest in value-added fiber-based substrates, nanocellulose applications, and intelligent packaging solutions. He leads research activities in material characterization, composite modeling, and sustainable manufacturing processes. Institution: Aalto University Department: Bioproducts and Biosystems Research Areas: Paper converting, Packaging technology, Nanocellulose, Sustainable composites Email: jouni.paltakari@aalto.fi
Liqiu Hu is a Doctoral Researcher at the Laboratory of Natural Materials Technology , affiliated with the Faculty of Science and Engineering at Åbo Akademi University. Their research focuses on bio-based materials , polymerization techniques , and nanocellulose applications , contributing to Sustainable Development Goals like responsible consumption and climate action. Key research areas: Lignin, Nanocellulose, Polymerization, Bio-based films, Green chemistry, Biocomposites Recent work trends: In-situ polymerization, Pickering emulsions, Drug delivery systems, Agricultural waste upcycling, Aqueous dispersion processing Collaborations include researchers from Åbo Akademi University and TAPPI Press. Publications span from 2017 to 2025, highlighting innovations in biopolymer interfaces and sustainable packaging . The laboratory's fingerprint indicates strong alignment with lignin (100%), nanocellulose (75%), and polymerization (66%) research.
Kevin O'Connor is a Full Professor in the School of Biomolecular and Biomedical Science at University College Dublin (UCD), where he has held academic positions since 1999, progressing from Assistant College Lecturer to his current role as Full Professor since 2018. He serves as Director of the BiOrbic Bioeconomy SFI Research Centre, leading Ireland's national research efforts in bioeconomy development. His academic career spans over 25 years with continuous advancement through UCD's academic ranks. Professor O'Connor's research focuses on two primary areas: biodegradable polymer synthesis by bacteria and enzymes as biocatalysts. His work in biodegradable polymers centers on polyhydroxyalkanoates (PHAs), investigating bacterial production methods using waste and bio-based resources. His enzyme research explores biocatalysis under mild conditions with high specificity, using protein engineering to enhance enzyme activity for producing pharmaceuticals and fine chemicals. His laboratory investigates waste valorization, upcycling plastic monomers, CO 2 conversion to biopolymers, and hydroxytyrosol applications in food and animal nutrition. His publication record reveals a strong trend toward solving plastic pollution through biotechnological approaches, with significant work on converting plastic waste to valuable biopolymers. Recent publications demonstrate expertise in bioprocess engineering for fungal cultivation, metabolic engineering of bacterial strains for PHA production, and developing sustainable alternatives to fossil-based plastics. His research bridges fundamental microbiology with practical industrial applications in the circular bioeconomy. NovaUCD innovation award (2016) Professor O'Connor has secured significant research funding including the Horizon Europe 'PROMOFER' project (2024-2028) focusing on PHB production optimization and the SFI 'BEACON' partnership (2019-2027) as part of the BiOrbic Bioeconomy Research Centre. He has coordinated the 'Applied Enzymology and Protein' module for over seven years and serves as PhD thesis supervisor. His leadership extends to chairing the Scientific Committee of the Biobased Industries Joint Undertaking and serving on the EC Expert Group for bio-based products. As Director of BiOrbic, Professor O'Connor leads a major national research center focused on developing Ireland's bioeconomy, with particular emphasis on creating rural economic opportunities through bio-based innovations. His work includes establishing the Lisheen bioeconomy innovation and pilot facility campus, demonstrating his commitment to translating research into practical applications that support primary producers in innovating and diversifying through science and technology.