Dr. Laura McMahon is an Associate Professor in Film and Screen Studies at the Faculty of Modern and Medieval Languages and Linguistics , University of Cambridge. She is currently on sabbatical leave and will return in Easter Term 2024. Her research explores intersections between film and philosophy , with a focus on French and Francophone cinema , decolonial approaches , feminist theory , and ecocritical perspectives . Dr. McMahon’s work examines how contemporary feminist filmmakers like Onyeka Igwe and Khady Sylla engage with archives to reframe history through speculative reimagining . She also investigates ecological themes in Claire Denis’s films and the ethics of animality in global art cinema. Her monograph Animal Worlds: Film, Philosophy and Time (2019) and edited collections like Animal Life and the Moving Image (2015) highlight her contributions to debates on nonhuman representation and deconstructive aesthetics . Her recent publications analyze documentary practices , postcolonial archives , and critical repurposing in moving image work. She welcomes inquiries from MPhil and PhD students working on related topics. Her teaching and research are affiliated with the Cambridge Film and Screen initiative and the Cambridge Italian Research Network (CIRN).
Professor Mikko Haataja is a distinguished faculty member in the Department of Mechanical and Aerospace Engineering at Princeton University's School of Engineering and Applied Science. Holding a Ph.D. from McGill University (2003), he leads the Haataja Research Group focused on theoretical and computational approaches to materials science and physical biology. His office is located in D404C Engineering Quadrangle, and he serves as an advisor to numerous graduate students working at the intersection of physics, materials science, and biology. Professor Haataja's research spans multiple domains including theoretical and computational materials science, physics of materials, and physical biology. His work examines microstructure formation during solid-solid phase transformations and solidification, growth of electrodeposited thin films and quantum heterostructures, dynamics of driven interfaces with mobile impurities, recrystallization kinetics, cell signaling mechanisms, and the regulation & self-organization of 'lipid rafts' in plasma membranes. His group has pioneered concepts in 'dynamically programmable electromechanical 2D materials' and investigates phase separation phenomena in biological systems. His publication record demonstrates significant contributions across several key areas: intracellular phase transitions and biomolecular condensates, 2D transition metal dichalcogenide materials, lipid bilayer membrane physics, solid oxide fuel cells and batteries, and organic semiconductor thin films. His most recent work focuses on amyloid-like fibril formation, liquid-liquid phase separation in biological contexts, and defect engineering in 2D materials, reflecting his interdisciplinary approach that bridges physics, materials science, and biology. Professor Haataja actively mentors graduate students and postdoctoral researchers, with numerous co-authored publications indicating strong advising relationships. His research program encompasses multiple funded projects investigating materials for energy conversion and storage, intracellular organization mechanisms, and novel 2D material systems. The Haataja Group maintains strong collaborations with other Princeton researchers and external institutions, particularly in the fields of biophysics and advanced materials. The Haataja Group operates as a dynamic research laboratory employing computational modeling and theoretical approaches to address fundamental questions in materials science and biophysics. Their work spans from atomic-scale simulations to continuum modeling, with particular emphasis on phase-field crystal models, membrane biophysics, and 2D material systems. The group maintains specialized computational infrastructure for multiscale modeling and collaborates extensively with experimental groups to validate theoretical predictions.
Anthony Rollett is a Professor in the Department of Materials Science and Engineering at Carnegie Mellon University , where he has been a faculty member since 1995. He serves as the Principal Investigator and Co-Director of the NASA-supported Institute for Model-Based Qualification & Certification of Additive Manufacturing (IMQCAM) and co-director of the Next Manufacturing Center . Prior to CMU, he held leadership roles at Los Alamos National Laboratory (1991-1995). Education: Ph.D., Materials Engineering, Drexel University (1987) MA, Metallurgy and Materials Science, Cambridge University (1977) Research Interests: Rollett’s work focuses on microstructural evolution and microstructure-property relationships in 3D using experiments and simulations. His expertise spans additive manufacturing , metal 3D printing , materials for energy systems , grain growth , recrystallization , and stereology , with techniques like high-energy diffraction microscopy (HEDM) and dynamic x-ray radiography (DXR) . Scientific Contributions: He has over 320 peer-reviewed publications and an h-index >80 . His recent articles highlight machine learning for laser processing , fatigue analysis of additively manufactured alloys, and design optimization for heat exchangers in supercritical CO2 and solar thermal applications . Scientific Awards: Fellow of ASM International (1996) Fellow of the Institute of Physics (UK) (2004) Fellow of The Minerals, Metals & Materials Society (TMS) (2011) Cyril Stanley Smith Award (TMS, 2014) Member of Honor, French Metallurgical Society (2015) US Steel Professor (2017) Francqui International Professor (2020-2021) International FAME Award (2023) Leadership & Impact: Rollett co-led the development of a NASA Space Technology Research Institute for additive manufacturing and established a new master’s program in additive manufacturing (2018). His research group is funded by industry , federal agencies , and Pennsylvania state grants . He also serves on the Basic Energy Science Advisory Committee and Defense Programs Advisory Committee for the Department of Energy.
Prof. Prita Pant is a faculty member in the Department of Metallurgical Engineering and Materials Science at the Indian Institute of Technology Bombay (IIT Bombay). She holds a Ph.D. and M.S. in Materials Science from Cornell University and a B.E. in Metallurgical Engineering from Roorkee University. Her research focuses on the mechanical behavior of advanced materials, particularly thin films and shape memory alloys. B.E., Metallurgical Engineering, Roorkee University (1997) M.S., Materials Science, Cornell University (2001) Ph.D., Materials Science, Cornell University (2004) Her research interests include mechanical behavior of thin films , dislocation dynamics , nanoindentation studies , simulation of deformation processes , and Ni-Ti based shape memory materials . She employs both experimental and computational techniques to investigate microstructural evolution and deformation mechanisms in metals. The available publications indicate a strong focus on thin film mechanics , dislocation behavior , and microstructure-property relationships , particularly under mechanical loading. Her work bridges computational modeling and experimental characterization, with applications in structural and functional materials. There are no scientific awards explicitly mentioned in the provided text. While no specific students are listed, Prof. Pant leads the Computational Mechanics and Experimental Group (CMEG@IITB) , indicating active supervision of graduate students and involvement in research grants. Her research group website suggests ongoing funded projects and collaborative work. She is affiliated with the Computational Mechanics and Experimental Group (CMEG@IITB) , which conducts research on multiscale mechanics of materials, combining simulation and experimentation to understand deformation phenomena.
Dr. Wenwu Xu is an Associate Professor in the Department of Mechanical Engineering at San Diego State University (SDSU), affiliated with the College of Engineering. His research focuses on advanced materials science, nanotechnology, and computational modeling of material behavior. He specializes in investigating dislocation dynamics, electric field effects on materials, and the development of novel processing techniques for metallic and ceramic composites. His work spans topics such as hydrogen embrittlement, nanocrystalline material properties, and 3D printing of bioinspired structures. He employs molecular dynamics simulations, atomistic modeling, and experimental validation to study material deformation, sintering mechanisms, and phase stability. Xu’s contributions include pioneering quasi-instantaneous materials processing via high-intensity electrical nano-pulsing and designing recyclable piezoelectric composites for wearable sensors. His research has been published in over 40 peer-reviewed articles since 2007, reflecting a sustained focus on nanoscale material behavior, thermodynamic stability, and industrial applications. While no awards are explicitly listed, his extensive publication record underscores his expertise in materials engineering and computational methods. Dr. Xu’s lab (via mmm.sdsu.edu ) likely explores cutting-edge materials processing and characterization techniques, though specific grants or advising roles are not detailed in the provided text.
Max Planck Institute for Sustainable MaterialsGermany
Dr. KN Sasidhar is a Researcher in the Department of Microstructure Physics and Alloy Design at Heinrich Heine University Düsseldorf. His work focuses on advanced materials science, particularly corrosion mechanisms, alloy design, and nanoscale structural analysis. He employs cutting-edge techniques like in situ synchrotron investigations and deep learning frameworks to study material behavior under extreme conditions. Current research emphasizes corrosion resistance in stainless steels, phase transformations during nitriding, and radiation effects on coatings. Key achievements include pioneering studies on nanoscale amorphization in metallic systems, data-centric approaches for materials discovery, and the development of predictive models for alloy performance. His work bridges experimental materials characterization with computational methods, addressing challenges in energy and aerospace applications. Publications span corrosion analysis, microstructural evolution under irradiation, and phase separation phenomena. Collaborative projects involve synchrotron facilities and interdisciplinary teams focusing on materials informatics. No formal awards or grants are explicitly listed in the provided texts, though his prolific publication record indicates active academic engagement.
Professor Ruth Holliday holds the position of Professor of Gender and Culture at the University of Leeds since 2006, where she has also served as Director of Studies for the Centre for Interdisciplinary Gender Studies, Director of Research and Innovation, and Director of Recruitment and Admissions for the School of Sociology and Social Policy. Previously, she worked at Staffordshire University and Birmingham City University, and served as a Visiting Professor at the University of Technology Sydney (UTS). Her research expertise spans cultural sociology, body studies, material culture, medical tourism, and gender relations, with a focus on low fertility and East Asian cultural contexts. Her academic qualifications include a PhD in Sociology and a BA in Electronics and Management Science. She has contributed to over 50 articles and 7 books, including the award-winning Beautyscapes (2019), which explored global cosmetic surgery tourism and won the Foundation for the Sociology of Health and Illness Book Prize in 2020. Her work on kitsch aesthetics and visual methodologies has also been influential, particularly in understanding class, gender, and race through taste politics. Ruth’s current research projects include studying low fertility cultures’ impacts on gender identities and a project on the cultural meaning of the penis in gender construction. She teaches modules such as Theorizing Gender and Contested Bodies at the MA level, emphasizing critical approaches to gender and embodiment. Key Projects: ESRC-funded 'Building Capacity in Visual Research' and collaborative work on medical tourism in East Asia and Europe. Awards: 2020 Foundation for the Sociology of Health and Illness Book Prize. Supervision: Active in mentoring PhD students researching the body, intimacy, and low fertility in China and Korea. Her interdisciplinary approach bridges sociology, cultural studies, and visual methodologies, with a commitment to ethnographic fieldwork and global comparative analysis.
Rey Ramirez, MD is an Assistant Professor of Orthopaedics & Rehabilitation at Yale School of Medicine, specializing in Hand & Upper Extremity Surgery with a focus on pediatric hand conditions. He joined Yale in 2022 after completing his pediatric hand surgery fellowship at Shriners Hospital of Philadelphia. Dr. Ramirez is affiliated with the Hand & Upper Extremity Surgery division and Pediatric Orthopaedics within the Department of Orthopaedics & Rehabilitation. Dr. Ramirez's educational background includes: BS in Biology from California Institute of Technology (2003) MD from David Geffen School of Medicine at UCLA (2007) Internship at Keck School of Medicine - Los Angeles County Medical Center (2008) Residency at Keck School of Medicine - Los Angeles County Medical Center (2012) Hand Surgery Fellowship at University of Texas Southwestern (2013) Pediatric Hand Surgery Fellowship at Shriners Hospital of Philadelphia (2014) Dr. Ramirez's primary research interests focus on pediatric hand surgery, including congenital hand conditions, brachial plexus birth injuries, and arthrogryposis. His clinical expertise spans pediatric hand reconstruction, microsurgery, and treatment of conditions such as amniotic band syndrome, carpal tunnel syndrome in children, and peripheral nerve injuries. Additionally, he has a strong interest in diversity and inclusion within orthopedic surgery, examining gender and racial disparities in the field and factors influencing specialty choice among medical students and residents. His recent publications demonstrate a dual focus on clinical pediatric hand surgery techniques and diversity in medicine. The surgical publications often address innovative approaches to complex pediatric hand conditions, while his diversity-focused work examines gender disparities in orthopedic surgery and physical medicine, contributing to important conversations about inclusion in medical specialties. His work spans both original research articles and textbook chapters on hand surgery topics. Dr. Ramirez has received several professional recognitions: "Top Research Study" award for his work on women's experiences in orthopedics versus physical medicine (2024) Top Doc for Kids recognition (2020) Best "Surgical Pearl" Paper award from the Pediatric Hand Study Group (2014) Dr. Ramirez is actively involved in mentoring medical students and residents, currently advising Tamanna Patel, Claire Donnelley, Louise Atadja, and Peter Laub. His educational contributions include developing virtual curricula for medical student orthopedic education and examining methods to improve resident performance on standardized examinations. While specific grant funding isn't detailed in the provided information, his research activities suggest involvement in both clinical outcomes studies and healthcare disparities research. Within the Yale Orthopaedics & Rehabilitation department, Dr. Ramirez contributes to the Hand & Upper Extremity Surgery and Pediatric Orthopaedics divisions. His work intersects with the department's broader research initiatives including the Liu Lab for Translational Orthopaedic Research and the 3D Collaborative for Medical Innovation (3DC), though specific lab leadership isn't mentioned in the provided information.
Dr. Shanshan Lan is a researcher affiliated with the University of Amsterdam’s Faculty of Social and Behavioural Sciences, where she contributes to the Moving Matters programme group. Her work focuses on urban anthropology, migration patterns, and racial formations across Asia and Euro-America. She examines transnational student mobility, global cities, African diasporas in China, and Chinese diasporas in the U.S., with a particular emphasis on class dynamics and social change. Her research employs ethnographic methods, including walking ethnography in urban environments, to explore how race and migration intersect with globalization. Notable projects include studies on African communities in Guangzhou, the role of the Catholic Church in African diasporas, and the experiences of Western entrepreneurs during the pandemic. Key Interests: Transnational migration, racial knowledge circulation, pandemic sociology, and global urban studies. Recent Focus: Whiteness studies in China, precarious migrant identities, and the impact of globalization on education and labor markets. Lan has received recognition for her work, including the Honorary Mention of the 2006 SUNTA Graduate Student Prize. Her publications span academic journals and edited volumes, addressing topics from racial inclusion policies to transnational business networks.
University of Illinois Urbana-ChampaignUnited States
Taylor L. Hughes is a Professor in the Department of Physics at the University of Illinois at Urbana-Champaign. He focuses on theoretical condensed matter physics, particularly topological insulators/superconductors, quantum information/entanglement techniques, and mesoscopic transport in low-dimensional materials. His research also explores connections between high-energy physics, gravity, and condensed matter systems. Education : B.S. in Physics and Mathematics (2003, summa cum laude) from the University of Florida; Ph.D. in Physics (2009) from Stanford University under Shou-Cheng Zhang. Research Interests : Topological insulators and superconductors Quantum entanglement in condensed matter Mesoscopic transport in heterostructures Topological order and quantum Hall effect Spin-orbit coupling and low-dimensional systems Interdisciplinary links to high-energy physics Scientific Awards : Donald Biggar Willett Faculty Scholar (2020, 2022) ONR Young Investigator Award (2015) University of Illinois Center for Advanced Study Fellowship (2014) NSF CAREER Award (2014) Dean's Award for Excellence in Research (2014) Alfred P. Sloan Foundation Research Fellow (2013) Teaching and Advising : Hughes has taught advanced courses including Condensed Matter Physics I (PHYS 560) and Special Topics in Physics (PHYS 598 CMX). He actively mentors highly motivated undergraduate and graduate students in computational and theoretical physics projects.
Swiss Federal Institute of Technology in LausanneSwitzerland
Andreas Mortensen is a full Professor at École Polytechnique Fédérale de Lausanne (EPFL) in Switzerland, where he leads research at the Mechanical Metallurgy Laboratory (LMM) within the School of Engineering. His office is located in building MXD at EPFL's main campus in Lausanne. Institution: École Polytechnique Fédérale de Lausanne (EPFL) School: School of Engineering (STI) Department: Mechanical Metallurgy Laboratory (LMM) Position: Professor Professor Mortensen's research focuses on the mechanical properties of materials, particularly metal matrix composites, microcellular materials, and the fundamental aspects of metallurgy. His work spans from theoretical modeling to practical applications in materials processing and characterization. He has made significant contributions to understanding infiltration processes, fracture mechanics, and the behavior of materials at micro and nano scales. Analysis of Professor Mortensen's recent publications (2022-2025) reveals a continued focus on advanced materials characterization techniques, particularly nanoindentation and micro-scale mechanical testing. His research shows increasing attention to additive manufacturing processes, multi-scale material behavior, and the development of novel composite structures. The work spans fundamental investigations of dislocation dynamics and slip phenomena to applied research on brazing technologies and investment casting methods. Throughout his extensive career, Professor Mortensen has supervised numerous students and collaborated with researchers worldwide, contributing to the advancement of materials science and engineering. His laboratory has been instrumental in developing methodologies for characterizing material behavior across multiple length scales, from nano to macro.
Professor Howard Stone is a faculty member at the University of Cambridge, affiliated with the Department of Materials Science and Metallurgy. He has progressed through academic ranks, including Professor of Metallurgy (2021), Reader in Metallurgy (2017), and Lecturer in Metallurgy (2012). PhD (University of Cambridge, 2000) MA (University of Cambridge, 1995) His research focuses on metallurgy and materials science , particularly Nickel-Based Superalloys , High-Entropy Alloys , and Titanium Alloys . Key areas include microstructural evolution under thermal stress, oxidation resistance, and additive manufacturing techniques like laser powder bed fusion. Professor Stone’s recent publications highlight trends in superalloy design , phase stability , and additive manufacturing . Topics include gamma prime precipitation, lattice misfit analysis, and oxidation behavior modification. He is associated with the Rolls-Royce UTC (University Technology Centre) at Cambridge, which focuses on advanced metallurgical research and industrial collaboration.
University of California , Santa Barbara (UCSB)United States
James S. Speck is the Seoul Viosys Professor of Solid State Lighting in the Department of Materials at the University of California, Santa Barbara (UCSB), within the College of Engineering. His research focuses on the materials science of wide bandgap semiconductors such as GaN and β-Ga₂O₃, emphasizing epitaxial growth, defect engineering, and device applications. He holds over 725 publications and has co-founded Soraa, a company commercializing GaN-based lighting technologies. Education: Sc.D. in Materials Science (MIT), S.M. in Metallurgy (MIT), B.Sc.Eng (University of Michigan). Research Interests: GaN-based semiconductors, nitride materials, epitaxial growth mechanisms, nonpolar/semipolar GaN, and β-Ga₂O₃. His work addresses threading dislocations, defect dynamics, and optoelectronic device performance. Awards: IEEE Photonics Society Aron Kressel Award, APS Fellowship, MRS Fellowship, and multiple best paper awards. Key Contributions: Pioneered MBE growth of GaN, developed V-defect engineering for LEDs, and advanced β-Ga₂O₃ research. Collaborates on Soraa’s high-brightness LED technologies. Lab/Teams: The Speck Group studies GaN heterostructures, defect mitigation, and wide bandgap semiconductor applications. Recent work includes V-defect-controlled LEDs and β-Ga₂O₃ etching techniques.
Hamouda Ghonem is a Professor in the Department of Mechanical, Industrial and Systems Engineering at the University of Rhode Island . He established the Mechanics of Materials Research Laboratory (MMRL) in 1981, focusing on experimental and computational studies of deformation and damage in advanced engineering materials under extreme conditions. Education: Ph.D., Mechanical Engineering, McGill University (1978) M.S., Mechanical Engineering, McGill University (1976) B.Sc., Nuclear Engineering, University of Alexandria (1969) Research Interests span high-temperature deformation of metallic alloys, creep-fatigue-environment interactions, dislocation-precipitate interactions, grain boundary mechanics, and ultrafine grain manufacturing. His work quantifies microstructural effects on material failure and develops predictive models for damage evolution in aerospace and nuclear materials. Scientific Awards include: Fellow of ASME Sabbatical appointments at European universities and aerospace research centers Laboratory Facilities at MMRL include: MTS servohydraulic testing machines Creep and high-strain rate (Split Hopkinson Bar, gas gun) systems Computational modeling with Abaqus, MATLAB, and in-house codes Microstructural analysis via SEM and optical microscopy Vacuum and high-temperature (-196°C to 1200°C) testing environments
Professor David R. Clarke is the inaugural Extended Tarr Family Professor of Materials at Harvard School of Engineering and Applied Sciences. He is a Senior Fellow of the Hong Kong Institute for Advanced Study (HKIAS) and member of the US National Academy of Engineering. PhD in Physics (University of Cambridge) B.Sc. in Applied Sciences (Sussex University) ScD (University of Cambridge) His research spans fundamentals and applications of ceramics, metals, semiconductors, and polymers, focusing on mechanical properties, thermal barrier coatings, dielectric elastomers, oxidation fundamentals, and microelectronics reliability. Recent work explores electro-adhesive forces and nanopore evolution in yttria-stabilized zirconia. With over 500 publications in journals like Nature and Advanced Materials, Clarke's work has been cited >50,000 times (h-index 107). He holds 13 patents and has advised students across MIT, UC Berkeley, and Harvard. 2008 Japanese NIMS Award 1993 Humboldt Senior Scientist Award Distinguished Life Member, American Ceramic Society Teaching includes undergraduate courses on heat transfer and materials design, plus graduate courses on dislocations and composites. His lab recently worked on quantum dot displays and fatigue crack sensing technologies.