Ting Lu is an Associate Professor at the University of Illinois at Urbana-Champaign in the School of Biomedical and Translational Sciences, focusing on microbial synthetic biology and systems biology. Their research bridges biology, engineering, and physics to reprogram cellular functionalities through gene regulatory networks. Ph.D. in Biophysics, University of California at San Diego (2007) B.S. in Physics, Zhejiang University (2002) Ting Lu's work explores microbial ecosystems, synthetic gene circuits, and their applications in biotechnology and medicine. By combining experimental approaches with mathematical modeling, they investigate bacterial communication networks, metabolic pathways, and spatial dynamics in microbial communities. Selected research trends include microbial consortia engineering for bioremediation and bioproduction, complexity reduction in microbiomes, and predictive modeling of synthetic gene networks. Their publications span high-impact journals such as Nature Communications , Nature Chemical Biology , and eLife . Fellow, American Institute for Medical and Biological Engineering (2022) Future Insight Prize (2021) Donald Biggar Willett Faculty Scholar (UIUC) (2020) NIH Maximizing Investigators' Research Award (2019) NSF CAREER Award (2015) AHA National Scientist Development Grant (2012) Ting Lu's lab has received grants from NIH, NSF, ONR, and industry partners. They offer undergraduate research opportunities in synthetic and systems biology, and teach advanced courses such as BIOE 430 - Intro Synthetic Biology and BIOE 432 - Systems Biology .
Prof. Dr. Gonzalo Guillén Gosálbez is a Full Professor at the Department of Chemistry and Applied Biosciences , ETH Zürich. He holds a PhD in Process Systems Engineering (UPC, 2005) and has held academic positions at Imperial College London (Reader), University of Manchester (Senior Lecturer), and Universitat Rovira i Virgili (Assistant/Associate Professor). His research focuses on Sustainable Chemical Processes , integrating life cycle assessment, optimization techniques, and planetary boundary analysis to evaluate and design low-carbon technologies. Current position: Full Professor, ETH Zürich (2019–present) Prior roles: Imperial College London (2016–2019), University of Manchester (2014–2016), URV Spain (2008–2014) Education: PhD (UPC, 2005), MEng/BEng (University of Murcia) His research explores CO2 valorization , green methanol synthesis , circular marine fuels , and planetary boundary compliance in energy and chemical systems. Recent work emphasizes machine learning for process modeling, single-atom catalysis , and decentralized ammonia production . Scientific contributions include 15+ peer-reviewed articles (2023–2025) in journals like Nature Chemical Engineering , ACS Sustainable Chemistry & Engineering , and Energy & Environmental Science . Key themes: Optimization of hybrid fossil/renewable carbon systems Environmental impacts of energy transitions Catalyst design for sustainable chemistry Life cycle assessment of emerging technologies Awarded UPC Top Doctoral Student Award and Top National Student Award , he combines process systems engineering with sustainability metrics to address global challenges in chemical and energy systems.
Chad E. Hart is a Professor in the Department of Economics at Iowa State University (ISU), specializing in agricultural economics and international trade policy. His research focuses on WTO agricultural commitments, crop insurance, biofuel policy, and commodity market dynamics. Hart holds a Ph.D. (1999) and B.S. (1991) in economics from ISU and Southwest Missouri State University, respectively. He has served in roles at ISU’s Center for Agricultural and Rural Development (CARD) and the Food and Agricultural Policy Research Institute (FAPRI), examining trade policies and energy-agriculture intersections. Hart has received notable awards, including the CALS Dean’s Citation (2020) and Exemplary Faculty Mentor Award (2016). His work bridges academic research and practical extension, addressing issues like trade disputes, commodity pricing, and agricultural sustainability. Hart’s insights frequently inform USDA outlook reports and policy analyses, with a focus on Iowa’s agricultural economy. Labs/Teams: Active in CARD and FAPRI, contributing to interdisciplinary research on agricultural policy and market dynamics.
Professor Jianhua Guo is a faculty member at The University of Queensland (UQ), holding the position of Professor and UQ Amplify Fellow in the Australian Centre for Water and Environmental Biotechnology (ACWEB). He is also the ACWEB Deputy Director - Research. His research focuses on integrating process engineering, environmental microbiology, and biotechnology to develop sustainable solutions for contaminant removal in water and wastewater systems. He is a pioneer in studying the environmental dimension of antimicrobial resistance (AMR), particularly how non-antibiotic pharmaceuticals and chemicals contribute to AMR spread. His groundbreaking work has been featured in over 100 media outlets and has secured over $14M in research funding. He has published over 200 peer-reviewed articles in journals like Nature Microbiology , Water Research , and Environmental Science & Technology . His accolades include the 2013 DECRA and 2017 ARC Future Fellowship. He serves as an editor for Journal of Hazardous Materials and Water Science & Technology . Research Interests Environmental AMR and microbial ecology Methane-based biotechnology and bioconversion Nitrogen cycling microorganisms Bioremediation and biofilm reactors Microplastics and health risks Wastewater treatment innovations Grants & Funding $14M+ in ARC Discovery/Linkage grants and industry partnerships ARC Training Centre for Environmental and Agricultural Solutions to Antimicrobial Resistance (CEA-StAR) Dual-membrane upgrading and anaerobic alkane oxidation projects Awards 2013 DECRA 2017 ARC Future Fellowship Supervision Prof. Guo actively supervises PhD and master’s students in areas like AMR mitigation, methane-based bioreactors, and microbial ecology. Notable supervised projects include studies on antibiotic resistance in wastewater, novel disinfection processes, and microbial oxidation of gaseous alkanes. Labs & Teams He leads research teams within ACWEB and collaborates with the Queensland Alliance for Environmental Health Science. His lab focuses on cutting-edge technologies like membrane biofilm reactors and gas fermentation systems.
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.
Dr. Simon Beaumont is an Associate Professor in the Department of Chemistry at Durham University , with additional responsibilities as Associate Dean (PGR) in the Faculty of Science. His research program integrates heterogeneous catalysis , nanomaterials , and in situ spectroscopic techniques to develop sustainable chemical processes. BA & MSci Natural Sciences, University of Cambridge (2003-2007) PhD in Heterogeneous Catalysis, University of Cambridge (2010) Postdoctoral Fellowship at UC Berkeley (2010-2012) Research foci include mechanistic studies of catalytic processes, nanoparticle synthesis , and in situ characterization via X-ray absorption (NEXAFS), DRIFTS, and Raman. His work addresses challenges in CO2 hydrogenation , biomass conversion , and environmental remediation , supported by national/EU/industrial funding. Recent publications highlight trends in selective hydrogenation (furfural), multi-functional catalysts (acid-base systems), and nanoparticle stability under reactive conditions. All studies emphasize molecular-level understanding for practical catalyst design. Scientific awards include Leverhulme Trust and Addison Wheeler fellowships. Teaching portfolio spans first-year laboratories , organic chemistry tutorials , and advanced catalysis lectures . Supervision of five research postgraduates and leadership of industry-funded projects further demonstrate his academic impact.
Chang-Jun Liu is a Senior Scientist in the Plant Science Group of the Biology Department at Brookhaven National Laboratory, where he has conducted research on plant phenylpropanoid biosynthesis and lignin metabolism since joining in 2005. He also holds an Adjunct Professor position in the Biochemistry & Cell Biology Department at Stony Brook University and serves as Associate Editor for Plant Cell & Environment (2024-present) and Frontiers in Plant Sciences (2015-present). Dr. Liu's educational background includes: Ph.D. in Plant Biochemistry and Molecular Biology from the Shanghai Institute of Plant Physiology, Chinese Academy of Science (1999) Dr. Liu's research integrates approaches from biochemistry, molecular genetics, biophysics, protein engineering, metabolic engineering, and synthetic biology to investigate phenylpropanoid and lignin biosynthesis in plants. His laboratory addresses fundamental questions about how lignin and related compounds are synthesized and incorporated into cell walls, how regulatory networks govern metabolic activity, and how lignification influences cell wall structure and function. A central aim of his research is optimizing plant feedstocks for efficient lignocellulosic biomass utilization. Analysis of Dr. Liu's publication record reveals a consistent trajectory from fundamental biochemical mechanisms to applied bioenergy solutions. His recent work focuses on cytochrome b5 diversity, electron transfer mechanisms in phenolic biosynthesis, and metabolic engineering approaches to modify lignin composition. This research spans from evolutionary studies of lignin biosynthesis across plant lineages to practical applications in bioenergy crop improvement. Dr. Liu has received recognition for his contributions to science, including: Brookhaven National Laboratory Science and Technology Award (2018) Dr. Liu serves as Editorial Board Member for the Journal of Biological Chemistry (2020-present), PNAS Nexus (2024-present), and Plant Physiology Journal (2025-). He is Scientific Lead at the Joint BioEnergy Institute, Feedstocks Division, Lawrence Berkeley National Laboratory, and Project Lead at the Center for Bioenergy Innovation, Oak Ridge National Laboratory. His research is funded by the U.S. Department of Energy through multiple Bioenergy Research Centers. Dr. Liu leads a research group at Brookhaven National Laboratory focused on elucidating the posttranslational regulation and macromolecular organization of lignin biosynthesis, with applications toward developing designer lignins and reducing biomass recalcitrance for sustainable biofuel production. His work addresses the critical challenge of lignin's dual nature: while it impedes enzymatic access to polysaccharides in biofuel production, it also represents the most abundant renewable source of aromatic carbon for high-value bioproducts.
Ville Vuorinen is an Associate Professor at the Department of Energy and Mechanical Engineering, Aalto University. His research focuses on computational fluid dynamics (CFD) in energy technology, particularly using Large-Eddy Simulation (LES) and hybrid LES-RANS approaches with OpenFOAM. Research Interests: Combustion, Turbulence, Hydrogen, Emission Reduction, Biofuels, Marine Engine Hydrodynamics, Primary Atomization, Liquid Cooling. His team explores hydrogen-enriched flames, ammonia combustion, two-phase flows, and virus transmission modeling. Article Trends : Recent work spans hydrogen pre-ignition in engines, LES of ammonia/methanol flames, aerosol transmission in choir rehearsals, atomic layer deposition conformality, underwater noise analysis, and techno-economic waste-to-hydrogen systems. Keywords include combustion modeling, sustainable energy, and cross-disciplinary CFD applications. Scientific Awards Teknologiateollisuus ry Diesel- ja kaasumoottoritoimialaryhmän tunnustusapuraha (2010) Collaborations : Works closely with experimentalists. Advisees include Shervin Karimkashi Arani, Parsa Tamadonfar, Ossi Kaario, and others. Research impacts energy-efficient ships, marine engines, and biomedical applications.
Dr. Samir H. Mushrif is a Professor in the Department of Chemical and Materials Engineering at the University of Alberta . Prior to this role, he served as faculty at the School of Chemical and Biomedical Engineering at Nanyang Technological University (NTU), Singapore . He holds a PhD in Chemical Engineering from McGill University and completed postdoctoral research at the University of Delaware, USA . Education : PhD (Chemical Engineering, McGill University), Postdoc (University of Delaware) His research focuses on computational catalysis , molecular modeling , and reaction engineering for biomass conversion and CO2 reduction . He develops novel catalysts, solvents, and reactor systems using integrated quantum mechanical and classical molecular simulations , synergized with experimental data to enable sustainable energy and chemical production . Recent publications highlight trends in condensed phase chemistry for biomass reactions, machine learning applications in solvent configuration prediction, and mechanistic studies of lignin-carbohydrate complex deconstruction. His work bridges methane activation on metal oxides, hydrodeoxygenation of bio-oil compounds, and polymerization pathways in lignin structures. Scientific Awards include: NSERC Doctoral and Post-doctoral Fellowships Discovery International Award 2017 (Australian Research Council) NANYANG EDUCATION AWARD 2016 (Singapore) SCBE Teaching Excellence Awards (Silver 2015, Gold 2016) Bharat Gaurav (Pride of India) Award 2014 Dr. Mushrif's NSERC Discovery Grant (2018), CFI John R. Evans Leaders Fund Grant (2022), and AcRF Tier-2 Grant (Singapore, 2015) have advanced his work. Current PhD and Master's students include José Carlos Velasco Calderón , Arul Mozhi Devan Padmanathan , and Sagar Bathla , among others. The CARES Lab (Catalysis Research for Sustainability) under his leadership combines ab initio molecular dynamics , machine learning potentials , and Density Functional Theory to design materials for renewable energy . Collaborations span institutions in France , Canada , India , and the UK .
Ashwani K. Gupta is a Distinguished University Professor at the University of Maryland, holding the Minta Martin Professorship in Engineering. He serves as Professor in the Department of Mechanical Engineering, Professor at the Institute of Physical Science and Technology, and Affiliate Professor in the Department of Aerospace Engineering. With over 45 years of experience in combustion engineering since graduating from Southampton University in 1970, Gupta has established himself as a leading authority in advanced combustion technologies. Dr. Gupta earned his Ph.D. from the University of Sheffield in 1973, followed by a D.Sc. from the same institution in 1986 and another D.Sc. from Southampton University in 2013. His academic journey includes six years at MIT as a research staff member and three years at Sheffield University as an independent research worker before joining the University of Maryland in 1983. Gupta's research focuses on revolutionizing combustion technology through innovations in swirl flows, high-temperature air combustion (HiTAC), and distributed combustion systems. His pioneering work on 'colorless distributed combustion' has enabled ultra-low emission combustion processes with significant applications in gas turbine engines and waste-to-energy conversion. His research spans biofuels, CO2 utilization, sulfur chemistry, waste conversion, and advanced laser diagnostics, addressing critical challenges in sustainable energy and environmental protection. Analyzing his recent publications reveals a strong emphasis on waste-to-energy conversion, biomass processing, and CO2-assisted technologies. Gupta's work demonstrates a clear trajectory toward sustainable energy solutions, with increasing integration of artificial intelligence for combustion optimization and emission control. His research bridges fundamental combustion science with practical engineering applications for cleaner energy systems. Among Gupta's numerous accolades are: Election to Fellowship of the Royal Academy of Engineering (2023) Honorary Fellowship of the Royal Aeronautical Society (2020) Recognition as one of the top 2% of scientists worldwide by Stanford University (2022-2024) Multiple prestigious medals from ASME and AIAA including the Soichiro Honda Medal (2018) and AIAA Air Breathing Propulsion Award (2014) Honorary doctorates from three international universities Gupta has secured substantial research funding throughout his career, resulting in over 850 technical papers, three books, 18 edited books, and 22 book chapters. He has delivered over 100 plenary/keynote/invited presentations at international conferences. His mentorship has shaped numerous graduate students who continue to contribute to the field of combustion engineering. Gupta directs the Combustion Laboratory at the University of Maryland, which serves as a hub for cutting-edge research in sustainable combustion technologies. The Combustion Laboratory, under Gupta's leadership, has become a center of excellence for advanced combustion research, particularly in distributed combustion systems, waste-to-energy conversion, and alternative fuels. The lab maintains strong collaborations with industry partners and international research institutions, facilitating technology transfer and practical implementation of research findings. Gupta's team employs state-of-the-art diagnostics and computational tools to advance fundamental understanding while developing practical engineering solutions for cleaner energy systems.
Valerie Thomas is the Anderson Interface Chair of Natural Systems at Georgia Tech, holding joint appointments in the H. Milton Stewart School of Industrial and Systems Engineering and the School of Public Policy. Her research focuses on energy systems, sustainability, industrial ecology, and science and technology policy. She earned a B.A. in Physics from Swarthmore College and a Ph.D. in Theoretical Physics from Cornell University, followed by postdoctoral research at Carnegie Mellon and Princeton Universities. Her work addresses low-carbon transportation, environmental impacts of food systems, and energy development in Africa. Key research areas include life cycle assessment, climate policy, and technology assessment. Thomas has contributed to over 80 technical publications and serves on advisory boards for the U.S. EPA and USDA/DOE. Education: Ph.D. in Physics, Cornell University; B.A. in Physics, Swarthmore College Awards: AAAS and APS Fellowships, Georgia Tech’s 1934 Outstanding Interdisciplinary Award Her teaching spans energy policy, lifecycle analysis, and engineering economics. She leads interdisciplinary teams at the Climate and Energy Policy Laboratory and the Technology Policy and Assessment Center, advancing sustainable systems engineering and policy solutions.
Dr. Li Shen is an Associate Professor at the Copernicus Institute of Sustainable Development , Utrecht University since 2015. She holds the Energy & Resources group and has been active in sustainability assessment of materials and energy systems since completing her PhD in 2011. Education: BEng (Mechanical Engineering, cum laude 1999, Shanghai) MSc (Sustainable Development, track Energy and Resources 2006, Utrecht University) PhD (2011, Utrecht University, thesis: Bio-based and Recycled Polymers for Cleaner Production – an Assessment of Plastics and Fibres ) Research Interests: Dr. Shen specializes in Life Cycle Assessment and Technological Sustainability Evaluation of Bio-based Plastics , Plastics Recycling , Waste Management , and Nanomaterials . Her work bridges Environmental Science , Chemical Engineering , and Sustainable Development through rigorous system analysis. Scientific Publications: Leading expert in Circular Economy applications for plastics Developed Ex-ante LCA frameworks for emerging materials Key contributor to PEF Bio-based Bottle sustainability analysis Active in Telescope Energy Systems sustainability Published in Nature Communications , Science of the Total Environment , and Journal of Cleaner Production Teaching: Responsible instructor for Advanced Energy Analysis in the Master Energy Science program. Also teaches Life Cycle Assessment and Sustainable Resources Use in the Global Sustainability Science bachelor program. Supervises numerous master thesis projects from Energy Science (ES), Sustainable Development (SD-EM), and Science for Energy Innovation (SBI) programs.
C. Perry Chou is a full professor in the Chemical Engineering Department at the University of Waterloo, with a cross-appointment in Biology. He holds a BSc and MSc from National Taiwan University and a PhD from Rice University, all in Chemical Engineering. His research focuses on integrating biochemical, genetic, and metabolic engineering strategies to enhance biomanufacturing using microbial cell factories. Key areas include recombinant protein production, microbial biotechnology, and biofuel development. Education: PhD in Chemical Engineering, Rice University (1995) MSc in Chemical Engineering, National Taiwan University (1987) BSc in Chemical Engineering, National Taiwan University (1984) Research Interests: Dr. Chou’s work spans biochemical engineering, bioprocessing, and metabolic engineering. He develops strategies for microbial strain construction, fermentation optimization, and bioproduct purification. His research bridges fundamental biological sciences with applied engineering to advance biomanufacturing. Publications: His 90+ peer-reviewed articles highlight contributions to strain engineering, CRISPR-Cas9 tools, and microbial production of chemicals like 5-aminolevulinic acid and propionate. Recent trends emphasize nanomaterial applications (e.g., graphene oxide) and sustainable biofuel pathways. Awards: Canada Research Chair (Canada) 1000-talent Award (China) Advising & Grants: Dr. Chou actively mentors graduate students and contributes to editorial roles at journals like Biotechnology Advances and Scientific Reports . He teaches courses such as CHE 161 (Engineering Biology) and CHE 562 (Advanced Bioprocess Engineering). Labs/Teams: Collaborates with interdisciplinary teams to advance bioprocess development, though specific lab names are not explicitly mentioned in the text.
Professor George Britovsek (FRSC) is a leading figure in catalysis and sustainable carbon management at Imperial College London . As Director of the MRes in Catalysis & Engineering and Head of Teaching in Inorganic Chemistry, he bridges academic leadership with cutting-edge research. His work focuses on transition metal complexes for converting ethylene , alkanes , biomass , and CO₂ into valuable chemicals and fuels through industrial collaborations. Education : M.Sc. (Technical University of Aachen, 1990), Ph.D. (Aachen, 1993) under Prof. W. Keim Postdoctoral Training : University of Tasmania (1994-1996), Imperial College London (1996-2000) His research interests span: Selective oxidation of alkanes using bio-inspired iron complexes Alkene conversions to functional polymers via novel catalysts CO₂ valorization into polymers and cyclic carbonates Biomass-derived feedstocks for chemical synthesis Recent catalysis trends highlight his work on: Designing Fe-N/C catalysts for epoxidation Developing PN3P pincer ligands for H₂ activation Creating degradable polyethylene via iron-catalyzed chain growth Modeling alternating α-olefin distributions in chromium systems Awards : Fellow of the Royal Society of Chemistry (FRSC) Students & Collaborators actively engage in: Photocatalytic polymer degradation Electrocatalytic CO₂ conversion Functionalized polymeric materials 3D-printed catalytic scaffolds His Britovsek Research Group operates at the Molecular Sciences Research Hub, White City Campus, advancing both homogeneous and heterogeneous catalysis through experimental and computational approaches.
Jonathan Conway is an Assistant Professor in the Department of Chemical and Biological Engineering at Princeton University and an associated faculty member of the High Meadows Environmental Institute (HMEI). He leads the Conway Lab, which focuses on engineering plant-microbe interactions for applications in bioagriculture, bioenergy, and biochemical industries. Education: B.S. Chemical Engineering, University of Notre Dame (2011) M.S. Chemical Engineering, North Carolina State University (2013) Ph.D. Chemical Engineering, North Carolina State University (2017) Postdoctoral Fellow, University of North Carolina Chapel Hill & Howard Hughes Medical Institute (2017-2021) Research Interests: The Conway Lab develops genetic engineering approaches for non-model bacteria at plant-microbe interfaces. Key research areas include: chemical signaling between plants and microbes, microbiome impacts on plant immunity, environmental stress responses in agricultural systems, and enzymatic degradation of lignocellulosic biomass using thermophilic bacteria. The lab employs bacterial genetics, systems biology, and biomolecular engineering to create technologies for sustainable bioindustries. Publication Trends: Recent work demonstrates strong emphasis on molecular mechanisms of plant-microbe communication (2020-2024), enzyme characterization in biomass degradation (2024-2025), and development of synthetic microbial communities for climate resilience (2024). Earlier research focused on extremophile enzymology and metabolic engineering (2012-2019). Student Advising: Currently mentors 4 graduate students and 8 undergraduates. Alumni include 9 former advisees who graduated between 2022-2024. The lab actively recruits students through Princeton's Chemical Engineering graduate program and undergraduate research initiatives. Laboratory: The Conway Lab develops microfluidic systems for root microbiome studies and genetic tools for engineering plant-associated bacteria. Current projects include designing thermophilic microbial consortia for consolidated bioprocessing and characterizing bacterial immune evasion strategies.