Sophia Lunt is a Professor in the Department of Biochemistry & Molecular Biology and Chemical Engineering & Materials Science at Michigan State University , where she has been since 2015 (Assistant Professor 2015-2021, Associate Professor 2021-2025, Professor 2025-present). She leads the Lunt Lab , focusing on cancer metabolism , particularly metabolic reprogramming in tumor proliferation, heterogeneity, and metastasis . Her work combines mass spectrometry , genetic cancer models , cell biology , and fluorescent agents to develop targeted cancer therapies . Ph.D. (2010) & B.S. (2005) in Chemistry Postdoctoral Fellow at MIT (2010-2015) NSF CAREER awardee (2019) 20+ peer-reviewed publications since 2007 Research Focus : Cancer metabolism (Warburg effect, PHGDH heterogeneity, TIGAR regulation) Photodynamic therapy (counterion-tuned agents, metal halide nanoclusters) Metabolomics (tumor-immune interactions, microbiome effects) Selected Scientific Awards : 2022 MSU College of Natural Science Teacher-Scholar Award 2022 MSU BMB Teaching Award 2020 MANA Young Investigator Award 2019 NSF CAREER & METAvivor Early Career Investigator Awards Her teaching includes BMB 101: Frontiers in Biochemistry (curriculum overhaul for freshman success) and BMB 461: Advanced Biochemistry I , covering metabolic regulation and pathways.
Dr. Jose Manuel Sánchez Peña is a Full Professor at Universidad Carlos III de Madrid (UC3M), affiliated with the Grupo Universitario de Tecnologías de Identificación (GUTI). His research focuses on precision agriculture technologies, optoelectronics, and neuroscientific interfaces. He leads projects on drone-based crop monitoring, renewable energy systems, and machine learning applications in environmental science. Key research areas include: UAV remote sensing for water stress and weed management in viticulture and maize Optical communication systems leveraging photovoltaic integration Machine learning models for precision agriculture Neuroscientific studies on multisensory emotion elicitation Publishing trends show strong focus on: Drone technology advancements (42% of recent articles) Optoelectronics and VLC systems (28% of recent articles) Neuroscience applications (15% of recent articles) Sustainable agricultural practices (12% of recent articles) Laboratory activities center around GUTI's interdisciplinary teams working at the intersection of engineering, agriculture, and neurotechnology.
Aurélien Bornet is a Lecturer at École Polytechnique Fédérale de Lausanne (EPFL) in the School of Basic Sciences (SB), specifically within the Institute of Chemical Sciences and Engineering (ISIC). He serves as the Platform Leader for the Nuclear Magnetic Resonance Platform at EPFL, where he oversees advanced NMR facilities and research. Dr. Bornet's research focuses on Nuclear Magnetic Resonance (NMR) and Dynamic Nuclear Polarization (DNP) techniques. His work spans several key areas including hyperpolarization methodologies, development of NMR instrumentation, and applications in both chemistry and biomedical fields. His research has led to significant advancements in dissolution DNP, long-lived nuclear spin states, and hyperpolarized metabolite imaging. His recent publication record demonstrates strong activity in developing new NMR techniques and applications, with particular emphasis on hyperpolarization methods that dramatically enhance NMR sensitivity. His work bridges fundamental physics with practical applications in medical imaging and materials science. The research outputs include numerous high-impact publications in journals like Nature Communications, Journal of the American Chemical Society, and Physical Chemistry Chemical Physics, as well as several patents related to NMR technology. Dr. Bornet has received recognition through multiple patents for his innovations in NMR technology, including patents related to polarizing agents, dissolution DNP methods, and NMR instrumentation. His work has important implications for biomedical imaging, particularly in the development of hyperpolarized metabolic imaging for cancer diagnostics and other medical applications. As an educator, Dr. Bornet teaches courses on Basic and Advanced NMR at multiple levels (Level 1 A, Level 1 B, and Level 2) at EPFL and in Sion. His teaching focuses on both theoretical and experimental aspects of NMR, providing students with hands-on experience with modern NMR spectrometers. His academic journey includes completing his PhD at EPFL in 2015 with a thesis on hyperpolarized protons for enhancing NMR sensitivity, advised by G. Bodenhausen and S. Jannin. Prior to this, he completed earlier research on long-lived states as probes of protein stability in 2010 under the supervision of G. Bodenhausen and P. Vasos.
Professor Natalie Wheeler is a Professorial Fellow-Research at the University of Southampton, affiliated with the Optoelectronics Research Centre (ORC). Her research focuses on advanced optical fiber technologies, particularly hollow-core fibers and their applications in photonics, gas sensing, and mid-infrared light transmission. She leads or co-leads multiple projects funded by the Royal Society and EPSRC, including initiatives like FASTNET and EVacuAted Optical Fibres. Key research projects include developing low-loss hollow-core photonic crystal fibers for mid-IR applications and exploring gas-induced optical properties in fibers. Her work integrates laser machining, gas dynamics modeling, and distributed sensing techniques. Recent publications highlight breakthroughs in gas-filled fiber fabrication, pressure dynamics, and Raman spectroscopy probes. Education: Details not explicitly stated in provided texts. Affiliations: Member of Hollow Core Fibre, Gas Photonics, Fibres and Communications, and Advanced Fibre Applications research groups. Publications span journals like Optics Express , ACS Photonics , and Journal of Lightwave Technology , emphasizing fiber design, gas dynamics, and optical transmission. Current grants include EPSRC funding for next-generation optical networks and UV-to-infrared fiber systems. Her work bridges fundamental fiber physics and practical applications in sensing, communications, and biomedical imaging, with a focus on hollow-core fiber innovations.
Saiful Islam is a Professor of Materials Modelling in the Department of Materials at the University of Oxford and a Professorial Fellow at St Anne's College. He holds a BSc and PhD in Chemistry from University College London (UCL). His research focuses on energy materials, including lithium batteries, solid-state batteries, and perovskite solar cells. He leads the Faraday Institution's CATMAT project on next-generation cathode materials and has contributed extensively to understanding atomistic processes in energy storage systems. Education: BSc Chemistry, University College London (UCL) PhD in Chemistry, University College London (1988) Research Interests: Lithium-rich cathode materials for Li-ion batteries Perovskite solar cell materials Solid electrolyte materials for solid-state batteries Atomistic modelling and computational materials science Awards & Honours: 2024 Faraday Institution STEM Outreach Award 2022 Royal Society Hughes Medal 2020 ACS Storch Award in Energy Chemistry 2016 Royal Institution Christmas Lecturer Declined OBE (2019) Outreach & Media: Presenter of 2016 Royal Institution Christmas Lectures (BBC TV) Guinness World Record holder for highest-voltage lemon battery Featured in BBC Radio 4's The Life Scientific (2019) Invited speaker at major events like the Compendium of Reason (2022) Future Engagements: 2025 Invited Lectures: E-MRS (Strasbourg), Royal Institution (London), PSCO-25 (Perugia), IBA (Singapore) Labs & Teams: Leads a research group focused on energy materials, with ongoing projects on perovskite solar cells and sodium-ion battery design.
Erik PAM Bakkers is a Professor in the Applied Physics and Science Education department at the Technical University of Eindhoven, where he leads the Advanced Nanomaterials & Devices research group and is affiliated with the Center for Quantum Materials and Technology Eindhoven. He also serves as a part-time professor at Delft Technical University in the Quantum Transport group, maintaining dual academic appointments. His research spans three primary domains: Nanomaterials, with a focus on Majorana particles in collaboration with Delft University, where recent discoveries have opened new frontiers in quantum information processing Light emission from silicon through crystal structure engineering, potentially revolutionizing fiber-optic communications Nanowire applications in solar cells, achieving significant efficiency gains through flexible designs using III/V semiconductor nanowires embedded in PDMS polymer Bakkers' publication record reveals a strong trajectory in quantum technologies and nanomaterials science, with emphasis on Majorana fermions, topological superconductivity, and quantum transport phenomena. His work consistently appears in premier journals including Nature, Science, and Nature Nanotechnology, demonstrating exceptional impact across quantum computing and renewable energy fields. His scientific recognition includes: NWO Vici Award (2010) for "Control of nanomaterials" ERC Consolidator Grant (HELENA, 2013) ERC Advanced Grant (2019) for "New nanomaterial to definitively demonstrate teleportation of Majorana particles" Professor Bakkers has supervised 77 students throughout his career and currently leads the "Enabling Majorana Braiding" project (2018-2028). His research group, established at Eindhoven in 2017, maintains strategic partnerships with industry leaders including IBM, Microsoft, and Philips, bridging fundamental research with practical applications in quantum computing and sustainable energy technologies.
Sylvain G. Cloutier is a Professor in the Department of Electrical Engineering at École de technologie supérieure (ÉTS) in Montreal, Canada, where he holds the Canada Research Chair in Inkjet-Printed Materials and Flexible Hybrid Electronic Devices. He also serves as an Adjunct Assistant Professor in the Department of Electrical and Computer Engineering at the University of Delaware. His research focuses on developing novel nanomaterials and fabrication techniques for printed electronics applications. Cloutier earned his Ph.D. in Engineering from Brown University in 2006, followed by an M.S. in Physics and B.Eng. in Engineering Physics from Université Laval in 2003 and 2001, respectively. He previously held a faculty position at the University of Delaware before joining ÉTS in 2011. His research interests span nanotechnologies, nanomaterials, nanostructures, nanofabrication, optical micro-spectroscopy, and optoelectronic devices including light-emitting diodes and photovoltaic cells. He has pioneered work in inkjet-printed materials and flexible hybrid electronic devices, with applications in solar cells, light-emitting diodes, photodetectors, thermoelectric converters, and sensors. His research integrates photonic processing techniques with printed electronics to create next-generation optoelectronic devices. Analysis of his recent publications reveals a strong focus on printed electronics, particularly using perovskite materials for solar cells, photonic curing techniques for material processing, flexible sensors, and integration of machine learning for device optimization. His work bridges fundamental nanomaterials research with practical applications in renewable energy and sensing technologies. Scientific Awards: Outstanding Thesis Award from Brown University (2006) DARPA Young Faculty Award (2009) Cloutier has supervised over 25 graduate students across various projects related to printed electronics, nanomaterials, and optoelectronic devices. His research has been supported by numerous grants from organizations including NSERC, FRQNT, NSF, and DOE. He regularly serves as an examiner for major research funding agencies in Canada and the United States. He leads the Canada Research Chair in Inkjet-Printed Materials and Flexible Hybrid Electronic Devices, which focuses on developing low-cost hybrid optoelectronic nanomaterials that can be integrated into simple device architectures for various applications. His research team develops new fabrication and characterization tools for studying optoelectronic materials, with emphasis on controlled nano-fabrication, large-scale manufacturing at low cost, and contact-free 3D micro-spectroscopy techniques.
Professor He Bin is Dean of the Department of Materials Science and Engineering at the Shenzhen University of Technology , where he has served since 2025.01. He is a core member of the Guangdong Provincial Higher Education Crystal Growth and Application Engineering Technology Center and recognized as a Shenzhen Overseas High-Level Talent . Previously, he was an Associate Professor at Shenzhen University of Technology (2018-2025) and held research positions at Southern University of Science and Technology and University of Hong Kong. PhD in Materials Physics and Chemistry from Beijing University of Technology (2008) Bachelor in Materials Forming and Control Engineering from China University of Petroleum (1998) His research focuses on diamond and related materials , thin film technology , and nanostructures , with applications in thermal management , photoelectrocatalysis , precision tooling , cultured diamond , 3D printing , and ultra-wide bandgap semiconductors . Recent publications highlight advancements in photoelectrochemical systems , electrocatalytic water splitting , and surface engineering . Scientific achievements include: Shenzhen University of Technology Major Project and Scientific Research Platform Construction Award (2019) First Prize for High-level Paper (2018) Peacock Talents Category C (2018) He has secured over 20 research grants, including projects from the Shenzhen Higher Education Stable Support Program and Guangdong Province Characteristic Innovation Projects. His work spans 12 representative papers , 3 book chapters , and 6 national patents in diamond-based technologies and heterojunction systems.
Andrea Crovetto is an Associate Professor at the Technical University of Denmark (DTU), affiliated with the National Centre for Nano Fabrication and Characterization and the Department of Nanofabrication. His research focuses on advanced materials for photovoltaic applications, including solar cell technologies, thin films, and semiconductor materials. His work contributes to UN Sustainable Development Goals related to affordable and clean energy. Key research interests include photovoltaic materials discovery, tandem solar cell design, and semiconductor characterization. Notable achievements include developing monolithic selenium/silicon tandem solar cells and pioneering studies on phosphosulfide semiconductors. He has authored over 90 publications and datasets, including high-impact articles in journals like JPhys Energy and PRX Energy . Dr. Crovetto has received the Young Scientist Award (2016) and actively supervises PhD students in projects such as Experimental Discovery of Phosphosulfide Materials for Solar Cells and Thiophosphate Thin Films for Quantum Technology . His research also involves collaborations on material synthesis, computational modeling, and device fabrication. He has presented at international conferences, including talks on monolithic tandem solar cells and materials discovery methodologies. His lab, based at DTU’s Produktionstorvet , integrates experimental and theoretical approaches to advance sustainable energy technologies.
Paola Ayala is a Professor at the Faculty of Physics of the University of Vienna, specializing in the Electronic Properties of Materials . Her research focuses on nanomaterials, particularly carbon nanotubes, graphene, and carbyne, exploring their electronic, magnetic, and optical properties. She leads the Doctoral College Advanced Functional Materials (DCAFM) (2020–2025), fostering interdisciplinary training in nanotechnology. Key research areas include nitrogen doping of carbon nanotubes, magnetic coupling in nanoclusters, and sensor applications of nanocomposites. She has pioneered studies on confined carbyne synthesis and the environmental stability of 1D nanocarbons. Ayala’s work bridges theoretical modeling (e.g., DFT simulations) and experimental techniques like Raman spectroscopy and XPS analysis. Her 2017 Matilde Hidalgo Prize recognizes contributions to nanomaterials science. She actively promotes STEM equity, co-authoring reports on women in physics in Austria and Ecuador. Ayala has supervised over 97 publications since 2007, with recent emphasis on functional nanomaterials for energy, sensing, and biomedical applications. Notable projects include developing flexible formaldehyde sensors and investigating magnetic properties of iron nanoclusters. She collaborates globally, presenting at conferences like the 2024 UNIVIE NanoteC Symposium and the 2023 International Nanotechnology Congress.
Derek Hao is a materials scientist and environmental engineer holding the Vice Chancellor’s Postdoctoral Fellowship at RMIT University's School of Science. His research focuses on advanced materials for environmental sustainability and energy conversion, particularly in waste plastic valorization, photocatalytic systems, and nanotechnology. He has secured over AU$1.2m in research funding and commercialized two patents on bismuth catalysts, generating significant industry impact. His work spans collaborations across Australia, Germany, China, and beyond. Education: PhD in Engineering (University of Technology Sydney, 2022); Bachelor’s in Chemical Sciences (China University of Geosciences). Research Priorities: Sustainable waste plastic solutions, photocatalytic energy conversion, nanomaterials, and environmental toxicology. Awards: Humboldt Research Fellowship (2022), RMIT Vice Chancellor’s Fellowship (2023), inclusion in Stanford’s Top 2% Scientists (2022–2023). Teaching: Teaches Analytical Chemistry and supervises 5 PhD students in areas like electrocatalysts for hydrogen production and CO₂ reduction. Grants & Patents: AU$1.2m+ in funded projects; commercialized bismuth catalyst patents yielding AU$500k+ annually. His research bridges fundamental science and practical environmental solutions, with over 100 peer-reviewed papers (H-index 46), including ESI Highly Cited and Hot Papers. He serves on editorial boards for journals like Science for Energy and Environment and Nano Research Energy .
LIN Yaochen is a Lecturer affiliated with the University of Strasbourg, France. He is a member of the MATISEN Team (Materials for information technology, sensors, and energy conversion) at ICube laboratory, where he contributes to research and teaching in materials science and optoelectronics. Role: Lecturer Research Focus: Photovoltaic materials, liquid crystal devices, nanomaterials for energy conversion Teaching: Involved in multiple Master's programs including Micro/Nano-Electronics, Condensed Matter and Nanophysics, and Materials Science Research Interests LIN's work centers on photovoltaic spatial light modulators , self-powered smart windows , and liquid crystal-nanoparticle composites . His research explores material selection, processing techniques, and device optimization to enhance performance in energy conversion and optical modulation. Key areas include: Material synthesis (e.g., TiO2/MWCNT nanohybrids) Charge transport in liquid crystals Dielectric properties of nanocolloids Smart glass technology Atomic-scale modeling of materials Scientific Awards No specific awards mentioned in available texts. Advising & Collaborations Supervises Master's level internships Active in interdisciplinary projects with physics and engineering departments Focuses on material innovation for optoelectronic devices
Paolo Samorì is a Professor at the University of Strasbourg and holds multiple leadership roles, including Deputy Director of the Institute of Supramolecular Science and Engineering (ISIS) and Director of the Nanochemistry Laboratory . He received his Laurea (Master's) in Industrial Chemistry from the University of Bologna (1995) and PhD in Chemistry from Humboldt University of Berlin (2000) under Prof. J.P. Rabe. His research focuses on nanochemistry, supramolecular science, materials chemistry, and scanning probe microscopies , with a strong emphasis on graphene, 2D materials, and hybrid nanomaterials for optoelectronics, energy, and sensing applications. His recent publications (470+ total) highlight advancements in: Crystal engineering of organic and inorganic materials Thermoelectric and supercapacitor systems using MOFs and MXenes Neuromorphic devices leveraging biopolymer hydrogels and optoionic effects Photodetection and photothermal conversion in 2D heterostructures Sensing technologies including SERS, SEIRAS, and electrolyte-gated transistors Samorì has received numerous scientific awards , including ERC grants, CNRS Silver Medal, and multiple international prizes. He serves as Associate Editor of ACS Nano and holds advisory roles for journals like Advanced Materials and Chemical Communications. His affiliations include the Royal Society of Chemistry , European Academy of Sciences , and German National Academy of Sciences and Engineering .
Rachel Oliver is a Professor of Materials Science at the University of Cambridge and Director of the Cambridge Centre for Gallium Nitride. Her research focuses on characterisation techniques for gallium nitride materials used in LEDs and laser diodes, with an emphasis on nanostructure engineering and quantum technology. Awarded OBE (2025), Fellow of the Royal Academy of Engineering (FREng) (2021), and Fellow of the Institute of Materials, Minerals and Mining (FIMMM) (2019) Developed atom-probe tomography and scanning capacitance microscopy to study nitride devices Her work on quantum dots and single-photon emitters has advanced quantum crystallography and optoelectronics. Recent publications highlight trends in nitride semiconductors , solar cell efficiency , and quantum device fabrication . Scientific Awards Royal Society University Research Fellowship (2006-2011) Chair in Emerging Technologies (2023) Grants EPSRC grant for semi-polar nitride structures Oliver's lab at the Department of Materials Science and Metallurgy explores nanoscale nitride structures for future devices, while advocating for gender equality in STEM.
Daniel G Georgiev is a Professor in the Department of Electrical Engineering and Computer Science at the University of Toledo's College of Engineering. He has been on faculty since Fall 2006, following prior roles as a research faculty member at Wayne State University's Center for Smart Sensors and Integrated Microsystems (SSIM). Education : M.S. in Engineering Physics (Quantum Electronics and Laser Equipment) from Sofia University (1994), Ph.D. in Electrical Engineering (Electronic Materials and Devices) from the University of Cincinnati (2003). Research Interests : Dr. Georgiev's work focuses on laser modification and micro-structuring of materials, thin films of semiconducting oxides/nitrides (e.g., NiO, Zn3N2), glassy materials, metal whiskers (Sn, Cu), wide bandgap semiconductors (GaN, Zn3N2), photovoltaics, and biomedical device applications. His expertise spans device fabrication, material characterization, and radiation effects. Article Trends : Recent publications emphasize GaN-based power electronics, hybrid edge termination structures, threshold switching in nanocircuitries, and material innovations via reactive sputtering. Subfields include laser microstructuring, whisker suppression in Sn films, and doping strategies for nitride semiconductors. Collaborations : Co-authorship with researchers across institutions, including contributions to biomedical implants, II-VI nanocrystals, and chalcogenide glasses.