Michael McAlpine is a Professor in the Mechanical Engineering department at the University of Minnesota . He also holds affiliations with the Biomedical Engineering and Electrical and Computer Engineering departments. His research focuses on 3D printing functional materials & devices , Nanoscale inks , Biomedical devices , Bioelectronics , and Flexible Microsystems . Research Interests : 3D Printing, Biomedical Engineering, Nanotechnology, Flexible Electronics, Microfluidics Labs : ME 361/363 Contact : mcalpine@umn.edu , (612) 626-3303, ME 117 Recent Research Trends include 3D Printed Biomedical Devices , Flexible Electronics , and Bioprinting Applications . His work spans from Spinal Organoid Formation to Programmable Drug Release Capsules . Scientific Award : Circulation Research 2020 Best Manuscript Award
Robert J. Hamers is a Professor of Chemistry and the Steenbock Professor of Physical Science at the University of Wisconsin-Madison . He serves as the Director of the Center for Sustainable Nanotechnology , a multi-institutional collaboration, and is a Senior Editor for Accounts of Chemical Research . Additionally, he co-founded the startup Silatronix, Inc. and leads the ACS/UW-Madison Bridge to the Chemistry Doctorate Program . B.S. in Chemistry, University of Wisconsin-Madison (1980) Ph.D. in Chemistry, Cornell University (1986) Hamers' research focuses on surface chemistry, nanotechnology, and renewable energy , with specific interests in electrochemical energy storage, photoelectron emission mechanisms, and environmental impacts of nanomaterials . His group develops ultra-stable surface chemistries for energy devices and investigates charge-transfer processes at material interfaces . Recent publications highlight advances in diamond-based materials , organosilicon electrolyte additives , and environmental fate of nanomaterials . Scientific recognitions include the Wisconsin Distinguished Professor title. His work bridges fundamental surface science with applied technologies through collaborations with academic institutions, national laboratories, and industry partners like Dow Chemical . The Hamers Group actively trains graduate students and postdoctoral researchers in multidisciplinary approaches.
Dr. Jeremy Guest is the Levenick Professor in Civil and Environmental Engineering (and courtesy appointment in Chemical & Biomolecular Engineering) at the University of Illinois Urbana-Champaign (UIUC). He serves as Associate Director for Research at the Institute for Sustainability, Energy, and Environment (iSEE) and leads the Center for Advanced Bioenergy and Bioproducts Innovation (CABBI). His research focuses on advancing circular bioeconomies through sustainable sanitation systems, resource recovery from wastewater, and biofuel/bioproduct development from lignocellulosic biomass. Guest's work emphasizes Quantitative Sustainable Design (QSD) methodologies to bridge engineering innovation with policy and investment decisions. Education: PhD in Environmental Engineering (University of Michigan, 2012); MS (Virginia Tech, 2007); BS (Bucknell University, 2005). Research interests include wastewater treatment innovation, nutrient recovery, bioenergy systems design, and sustainable agriculture practices. Key contributions include the EcoRecover phosphorus recovery process, the QSDsan modeling platform, and leadership in CABBI's $262.5M DOE-funded initiative. Guest has secured funding from NSF, US EPA, USDA, and the Bill & Melinda Gates Foundation. Recognitions include the NSF CAREER Award, 2021 James J. Morgan Early Career Award, and the Paul L. Busch Award. He advises over 15 graduate students and leads multiple high-impact projects like the NEWgenerator sanitation system and oilcane biorefinery integration. Lab/Group: Guest Research Group focuses on experimental, computational, and policy-oriented research to solve global sustainability challenges. Current projects address algae-based wastewater treatment, fecal sludge management in low-income regions, and precision fermentation systems development.
Dist. Professor Rachel Caruso is a Professor at RMIT University's School of Science, specializing in nanomaterials, energy storage systems, and photocatalysis. Her research focuses on advancing materials science through innovations in titanium-based nanomaterials, perovskite solar cells, and sustainable hydrogen production. She is actively involved in research supervision, offering guidance on topics like carbon capture, electrochemical CO₂ reduction, and antimicrobial surface engineering. Her work integrates machine learning for material discovery and emphasizes interdisciplinary applications in environmental and biomedical fields. Research Interests: Macromolecular Chemistry, Nanotechnology, Energy Materials, Photocatalysis, and Biomedical Applications. Supervision Projects: Includes pioneering studies on direct air capture of CO₂, graphene-based photocatalytic films, and perovskite materials for biomedical uses. Professor Caruso collaborates extensively on projects addressing global challenges such as renewable energy and antimicrobial resistance. Her contributions span over 200 publications, with notable advancements in titanium suboxide synthesis and electrocatalyst design.
Professor Kevin Sivula is a Full Professor of Chemical Engineering at École Polytechnique Fédérale de Lausanne (EPFL), where he leads the Laboratory of Molecular Engineering of Optoelectronic Nanomaterials (LIMNO) and serves as Director of the Institute of Chemical Sciences and Engineering (ISIC). He teaches courses on Transport Phenomena, Chemical Engineering Practicals, Product design, and solar energy conversion systems. His research focuses on photoelectrochemical solar energy conversion, particularly developing novel nanomaterials for renewable energy applications. Professor Sivula's work bridges chemical engineering, materials science, and renewable energy technologies with emphasis on solar water splitting and hydrogen production. His research group explores organic semiconductors, transition metal dichalcogenides, perovskite materials, and metal oxide photoelectrodes for solar fuel generation. Professor Sivula's recent publications (2023-2025) demonstrate his leadership in advancing perovskite solar cell technology, developing novel photoelectrochemical systems for hydrogen production, and engineering semiconductor interfaces for improved energy conversion efficiency. His work spans fundamental materials characterization to device engineering, with particular emphasis on stability and scalability of solar fuel production systems. As an academic leader, Professor Sivula has supervised numerous PhD students whose research spans organic semiconductor nanoparticles for solar hydrogen production, perovskite materials engineering, photoelectrochemical CO 2 reduction, and nanomaterials for energy conversion. His research has been supported by various grants focused on advancing sustainable energy technologies.
Professor Bing-Jie (Bruce) Ni is an Adjunct Professor at the University of Technology Sydney (UTS) within the School of Civil and Environmental Engineering and a full Professor at UNSW Sydney. He is an internationally recognised leader in environmental engineering, wastewater treatment, greenhouse-gas mitigation, microplastics fate, electrocatalysis and sustainable energy systems. Education PhD in Environmental Engineering, University of Science and Technology of China, Hefei (2005–2009) Research Interests Professor Ni’s research integrates process engineering, microbial biotechnology, materials science and mathematical modelling to develop sustainable technologies for high-efficiency pollutant removal, minimal carbon footprint and maximal energy recovery from wastewater. He is a global pioneer in: Modelling and control of nitrous oxide (N₂O) and methane (CH₄) emissions from wastewater systems, Micro- and nano-plastics ecotoxicity and mitigation in anaerobic digestion, Transforming sewage sludge into high-value liquid bio-energy (medium-chain fatty acids and long-chain alcohols), Designing cost-effective electrocatalysts from natural minerals for green hydrogen production and wastewater electrolysis. Research Output & Impact Over the last decade he has published 2 research books, 30 book chapters and >400 refereed journal papers , including 35 in Environmental Science & Technology and 85 in Water Research . His work has influenced global policy: the IPCC adopted his nitrous-oxide-emission model in 2019 to revise national greenhouse-gas inventories for the first time in 13 years. Awards & Recognition ARC Future Fellowship & ARC DECRA Fellowship Clarivate Analytics Highly Cited Researcher (Web of Science) Royal Society of Chemistry Highly Cited Researcher (2020–present) Mendeley Data Top 2 % Cited Researchers worldwide Listed among “Australia’s Most Innovative Engineers” (Engineers Australia, 2018) 50+ additional awards including Scopus Young Researcher Award, South Australian Water Awards, UQ Research Excellence Awards, and Outstanding Doctoral Dissertation Awards. Research Funding & Leadership He has secured ≈ AUD $10 million in competitive funding (six major ARC grants plus >20 government, university and industry projects). He serves as: Lead Guest Editor, Water Research Editorial Advisory Board, Environmental Science & Technology Associate Editor for Journal of Cleaner Production , Environmental Chemistry Letters , Environmental Research , Journal of Environmental Management Editorial Board member for five additional high-impact journals. Teaching & Supervision At UTS he teaches Renewable Energy Technologies , Environmental and Sanitation Engineering , Process Dynamics and Control , and Water and Wastewater Treatment . He is available to supervise Masters and PhD students in environmental biotechnology, process modelling and sustainable energy systems. Laboratory & Commercial Translation He heads active research teams at both UNSW and UTS and is the inventor of >10 granted patents , some of which are currently being commercialised to deliver real-world impacts in greenhouse-gas-neutral wastewater treatment and renewable energy production.
Dr. Patrick J. McNamara is an Associate Professor in the Department of Civil, Construction and Environmental Engineering at Marquette University's College of Engineering. He directs the McNamara Research Group, which focuses on understanding how chemicals from consumer products impact public health and the environment once they pass through water treatment systems. His research bridges environmental engineering and microbiology to address critical water quality challenges facing modern infrastructure. Dr. McNamara's educational background includes: Ph.D., 2012, Civil Engineering, University of Minnesota, Twin Cities M.S., 2008, Environmental and Water Resources Engineering, University of Texas at Austin B.S., 2006, Civil Engineering (Minor - Spanish for the Business Professions), Marquette University His research program investigates how consumer product chemicals impact engineering treatment processes that rely on healthy bacteria to treat water. The McNamara Research Group develops non-traditional treatment processes to remove these chemicals from water and mitigate their environmental effects. His work spans antibiotic resistance in water systems, micropollutant removal technologies, pyrolysis of biosolids, PFAS contamination, and electrochemical treatment processes. Specific areas include the impact of corrosion inhibitors on antibiotic resistance, removal of chemicals via drinking water treatment, environmental antibiotic resistant bacteria, beneficial biosolids reuse, and pyrolysis applications. Dr. McNamara's publication record demonstrates a strong focus on emerging water quality challenges, particularly the intersection of chemical contaminants and antibiotic resistance. His recent work examines corrosion inhibitors' impact on antibiotic resistance in drinking water, PFAS mitigation through advanced treatment processes, and environmental drivers of antibiotic resistance in stormwater systems. His research combines fundamental microbiology with practical engineering solutions to address complex water quality issues. Dr. McNamara has received numerous honors and awards: 2022 OCOE Outstanding Researcher Award from Marquette University Marquette University's Campus 2020 KEEN Rising Star Faculty Scholar Award from Provost Office (2019) Central States Water Environment Association Bill Boyle Outstanding Educator Award (2018) Way Klingler Young Scholar Award (Marquette University, 2018) Excellence in Review Award – Environmental Science & Technology (2017) Dr. McNamara has secured significant research funding as Principal Investigator on multiple projects, including NSF grants focused on mitigating antibiotic resistance in drinking water and studying the environmental impacts of quaternary ammonium compounds. His current research portfolio includes projects on PFAS removal through novel electrocoagulation-peroxidation processes, designing green stormwater infrastructure to combat antibiotic resistance, and removing contaminants from greywater using electrocoagulation technology in collaboration with industry partners like Kohler Company. The McNamara Research Group at Marquette University maintains strong collaborations with researchers across multiple institutions and works closely with water utilities and industry partners to translate research findings into practical solutions for water treatment challenges. Their work addresses critical infrastructure needs while protecting environmental and public health through innovative engineering approaches.
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.
Dr. Qing Jin is an Assistant Professor of Food Science at the School of Food and Agriculture, College of Natural Sciences, Forestry and Agriculture, University of Maine. Her research focuses on economically-viable and environmentally-friendly food system innovation, with emphasis on value-added utilization of food waste and by-products through advanced processing technologies. Education: Ph.D. (2020) from Virginia Tech She teaches courses on food engineering principles (FSN 485), food engineering lab (FSN 486), food preservation (FSN 502), and co-teaches an advanced graduate seminar (AVS 633/FSN 671). Supported by the Maine Agricultural and Forest Experiment Station, her current Hatch project (ME022423) explores sustainable food industry solutions through biorefinery approaches. Her work spans food waste valorization, biofuels, bioproducts, and techno-economic analysis. Recent publications highlight her expertise in dietary fiber modification, fermentation optimization, biochar development, and polyphenol extraction from agricultural waste streams. She actively seeks undergraduate and graduate research assistants for her lab. Contact: qing.jin@maine.edu | Office: 109 Hitchner Hall | Phone: 207-581-1687
Michael Ellis is an Associate Professor in the Department of Mechanical Engineering at Virginia Tech since 2012, with prior roles as Associate Professor and John R. Jones Faculty Fellow (2007–2012). His work spans fuel cell systems, energy modeling, and sustainable technologies. Ph.D. , Mechanical Engineering, Georgia Institute of Technology (1996) M.S. , Mechanical Engineering, Georgia Institute of Technology (1993) B.S. , Mechanical Engineering, University of Tennessee (1985) Research interests include fuel cell systems for building cogeneration, energy consumption modeling, industrial process analysis, and optimal hybrid energy system design. Recent work focuses on battery recycling processes, microbial fuel cells, and thermal stress characterization of membranes. His 15 most recent publications highlight trends in battery recycling scalability , fuel cell durability , microbial energy conversion , and nanomaterials for energy applications . Key subfields include membrane stress modeling, microbial adhesion mitigation, and hybrid gas/electric system optimization. Excellence in Architecture Award (2006) Woodruff Teaching Fellowship (1995) Tau Beta Pi Member Multiple teaching awards at Virginia Tech (2000–2003) As faculty advisor for the award-winning Solar Decathlon team (2002), he contributed to interdisciplinary energy projects. His work connects mechanical engineering with sustainable energy systems, focusing on practical implementations and material innovations.
Muhammad Muddasar is a Researcher at the University of Limerick's School of Engineering, affiliated with the Bernal Institute. His primary research focuses on developing sustainable materials derived from lignin for energy harvesting and storage applications. Under the supervision of Professor Maurice Collins, he investigates advanced materials such as hydrogels, ionic conducting membranes, and carbon nanomaterials to enhance renewable energy systems. His work emphasizes reducing environmental impact through innovative synthesis techniques and lifecycle analysis. Key research areas include thermoelectric materials, bioenergy production, microbial electrolysis cells, and lignin valorization. Collaborations span topics like low-grade thermal energy recovery, supercapacitor optimization, and carbon fiber production improvements. Despite no explicit awards listed, his contributions include over 17 peer-reviewed publications between 2021-2025, showcasing impactful work in Materials Today Sustainability, Advanced Functional Materials, and ACS Applied Polymer Materials. His articles highlight trends in lignin-derived materials for energy applications, sustainable manufacturing, and nanomaterial-driven bioenergy systems. Active in international networks, his research bridges material science and renewable energy engineering, addressing global sustainability challenges.
Lea R. Winter is an Assistant Professor in the Department of Chemical and Environmental Engineering at Yale University's School of Engineering & Applied Science. Her research focuses on electrified processes at the nexus of food, energy, water, and climate, with emphasis on sustainable CO 2 conversion, green nitrogen fixation, wastewater valorization, and plasma-electrochemical systems. She leads an active research group and mentors multiple PhD students, postdocs, and undergraduates. Ph.D., Columbia University B.S., Yale University Dr. Winter's research interests lie at the intersection of sustainability and chemical engineering. She pioneers electrified membrane technologies, plasma-activated reactions, and catalytic processes for converting waste streams (CO 2 , nitrates, wastewater) into valuable fuels, chemicals, and fertilizers. Her work integrates electrochemistry, plasma chemistry, and heterogeneous catalysis to develop distributed, circular solutions for environmental challenges. Key themes include green ammonia production , on-demand fertilizer synthesis , and electrified water treatment with resource recovery. Analysis of her recent publications reveals a strong focus on electrified membranes for nitrate and CO 2 conversion, plasma-activated co-processing of N 2 and C 1 gases, and single-atom catalysis for environmental applications. Her research spans fundamental reaction mechanisms to scalable engineering solutions, often published in high-impact journals such as Nature Water , PNAS , and Joule . The work demonstrates a consistent trajectory toward enabling a distributed hydrogen and nitrogen economy through sustainable electrochemical and plasma-driven technologies. Scientific Awards: Beckman Young Investigator Award (2024) Department of Energy Early Career Award (2024) Caltech Young Investigators Lecture Series Award (2022) NEWT Distinguished Postdoctoral Fellowship (2020) NSF Graduate Research Fellowship (2015) North American Catalysis Society Kokes Award (2019) Dr. Winter actively mentors students and has advised several who have gone on to PhD programs and faculty positions. Her lab receives significant research funding, as evidenced by her early-career awards from DOE and NSF. She leads projects on mining nontraditional water sources for hydrogen, plasma-based fertilizer synthesis, and electrified membrane systems. The Winter Lab fosters a collaborative, creative, and safe research environment centered on the principles of CRISP: Creativity, Respect, Investment, Safety, and Partnership. She also contributes to scientific discourse through invited viewpoints on climate education and critiques of emerging technologies like seawater electrolysis. Her lab collaborates widely, including with researchers at Columbia, Caltech, and international institutions.
Dr. Andrea S. Carlini is an Assistant Professor of Materials in the Department of Chemistry & Biochemistry at the University of California, Santa Barbara (UCSB). Her research focuses on structurally dynamic biomaterials and devices, aiming to bridge biochemical signals with soft materials for smart biomedical applications. She holds a PhD from UC San Diego and completed a postdoc at Northwestern University’s Querrey Simpson Institute for Bioelectronics. B.S. in Chemistry & Biological Sciences (Virginia Tech, 2012) M.S. in Chemistry & Biochemistry (UC San Diego, 2014) Ph.D. in Chemistry & Biochemistry (UC San Diego, 2018) Her research is organized into three core areas: (1) stimuli-responsive materials for disease monitoring, (2) 4D shape-changing peptides/polymers, and (3) soft wearable devices for quantitative health feedback. Recent work includes thermal sensors for vascular access and enzyme-responsive biomaterials for tissue engineering. Published articles span bio-electrochemical systems, wearable sensors, and smart hydrogels. Her NSF GRFP Fellowship supported early work on myocardial tissue engineering. The Carlini Group collaborates broadly across UCSB’s interdisciplinary environment. Labs/Teams: Carlini Group (UCSB) Focus: Bioelectronics, biomedical devices, and dynamic materials
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.
Ehud Gazit is a distinguished Professor in the Department of Molecular Microbiology and Biotechnology at Tel Aviv University's Faculty of Life Sciences. He holds the Chair for Nano-Biology and serves as Vice President for Research and Development at Tel Aviv University. Professor Gazit has held numerous prestigious visiting appointments including at Umeå University, Fudan University, and Cambridge University. His academic journey began with a B.Sc. (summa cum laude) from Tel Aviv University's Special University Program for Outstanding Students in 1991, followed by a Ph.D. (with distinction) from the Weizmann Institute of Science in 1997, and postdoctoral training at MIT from 1997-2000. Professor Gazit's research focuses on molecular structure and self-assembly at the nano-scale, particularly examining protein folding, unfolding, and misfolding phenomena. His laboratory investigates the mechanisms and significance of protein unfolding and misfolding, with experimental systems including bacterial toxin-antidote systems, type II diabetes-related amyloidogenic proteins, and the VHL tumor suppressor protein. His work bridges fundamental biochemistry with nanotechnology applications, exploring how molecular self-assembly can be harnessed for technological innovation. His recent publications demonstrate a strong trajectory in peptide-based nanomaterials, with particular emphasis on amyloid formation mechanisms, peptide self-assembly for functional materials, and therapeutic applications targeting neurodegenerative diseases. His work spans multiple disciplines including biochemistry, nanotechnology, materials science, and biomedical engineering, showing increasing integration of fundamental research with practical applications. Professor Gazit has received numerous prestigious awards including: 2020 Landau Prize in Sciences and Arts in the Field of Healthy Aging 2019 Rappaport Prize for Excellence in Biomedical Research 2018 Foreign Fellow of the National Academy of Sciences, India 2016 ERC Advanced Grant from the European Research Council 2015 Elected Member of the European Molecular Biology Organization (EMBO) Professor Gazit has been actively involved in mentoring students and researchers, as evidenced by his extensive publication record with numerous collaborators. He has secured significant research funding including an ERC Advanced Grant. His professional activities include editorial board memberships for journals including Journal of Peptide Science, Nanoscience & Nanotechnology - Asia, and Amyloid. He previously served as Chief Scientist of the Ministry of Science and Technology (2012-2014). His laboratory has developed innovative approaches to studying molecular self-assembly, with particular expertise in peptide nanostructures. The research team has made significant contributions to understanding amyloid formation mechanisms while simultaneously developing novel biomaterials with applications ranging from electronics to medicine. They have established strong collaborations with research groups worldwide, creating a dynamic interdisciplinary research environment focused on the intersection of biology and nanotechnology.