Professor Ulrik Lund Andersen heads the quantum information group at DTU Physics, Technical University of Denmark. His research develops quantum technologies including quantum computation, secure communication, and quantum-enhanced measurement systems. His group generates entangled optical states and investigates diamond-photon interactions for quantum nonlinearities. Key research areas: Quantum computing architectures Continuous-variable quantum information Quantum key distribution Quantum-enhanced sensing Solid-state quantum systems Recent work advances error correction, quantum state engineering, and quantum sensing algorithms. Publications demonstrate consistent focus on practical quantum technology implementation. Awards include multiple Sapere Aude research grants and the Eliteforsk Award from the Danish Ministry of Science.
Zoran Cenev holds a Tenure Track Assistant Professor position within the Mechatronics and Dynamics section of the Department of Mechanical and Production Engineering at the School of Engineering, Aarhus University. His primary institutional affiliation is with AU Engineering, and contact details include email zoran.cenev@mpe.au.dk and telephone +45 20 64 75 44, with office location Aarhus N, 5128-140. Research interests focus on interdisciplinary applications of magnetic and robotic systems: Robotic micromanipulation via electromagnetic needles Ferrofluid-based biofabrication for skeletal muscle engineering Laser-induced photothermal droplet control Theoretical modeling of particle dynamics at fluid interfaces Surface engineering for underwater metallic stability Nanostructure formation through ion bombardment His recent publications (2023-2025) reveal a dominant trend in adapting ferrofluids for biomedical automation, particularly 3D bioprinting of magnetically responsive tissues and droplet manipulation on engineered surfaces. This work bridges mechanical engineering with regenerative medicine, emphasizing practical implementations of theoretical models for microscale precision. Scientific awards are not documented in the provided information. As a faculty member, Dr. Cenev likely mentors graduate students and pursues research grants, though specific advisees or funding details are absent. Departmental laboratories and workshops support his experimental work in mechatronics, with emphasis on magnetic manipulation systems and surface characterization.
Brian Møller Andersen is a Professor in Solid State Physics at the Niels Bohr Institute, University of Copenhagen, where he has maintained continuous academic appointments since completing his PhD. His research spans multiple frontiers of condensed matter physics with significant contributions to superconductivity and magnetism. PhD in Theoretical Physics, University of Copenhagen (2001-2003) PhD studies at Stanford University (2000-2001) MSc in Theoretical Physics, University of Copenhagen (1998-2000) International Exchange at UC Berkeley (1997-1998) BSc in Mathematics and Physics, University of Copenhagen (1994-1997) Andersen's primary research focuses on Superconductivity , particularly high-temperature superconductors where magnetism and superconductivity coexist, and Magnetism in novel quantum materials. His work extends to Quantum Transport phenomena, Ultracold Atoms in optical lattices, Topological Insulators , and Strongly Correlated Systems . Recent publications reveal a growing emphasis on altermagnetism, kagome lattice physics, and topological superconductivity, indicating significant evolution in his research trajectory toward emergent quantum phenomena. Analysis of his 15 most recent publications (2024-2025) shows a clear progression into cutting-edge areas: 60% focus on altermagnetism and novel magnetic states, 40% on unconventional superconductivity in topological materials, and 30% examining quantum confinement effects. His work demonstrates increasing interdisciplinary connections between condensed matter theory, materials science, and quantum information science, with frequent collaborations across Europe and the US. Andersen has received significant research support through prestigious fellowships including the Lundbeck Foundation fellowship (Associate Professor level, 2012-2017) and FNU Steno Stipend (Assistant Professor level, 2009-2013), alongside early career support from the Villum Kann Rasmussen Post. Doc. Stipend. His research group at the Niels Bohr Institute focuses on theoretical modeling of quantum materials, particularly computational approaches to understanding competing orders in correlated electron systems. The group maintains strong connections with experimental teams conducting neutron scattering, STM, and ARPES measurements to validate theoretical predictions.
Pooya Davari is a Professor and Head of the Section for Applied Power Electronic Systems at Aalborg University , Denmark. He leads the EMI/EMC in Power Electronics Research Group and serves as Vice Chair of the Energy Efficiency Mission. His research focuses on electromagnetic interference (EMI) and harmonic mitigation in power electronic systems, with over 200 publications and significant contributions to renewable energy integration. Education: B.Sc. and M.Sc. in Electronic Engineering (2004, 2008), Ph.D. in Power Electronics from Queensland University of Technology (2013) Prior Roles: Lecturer at QUT (2013–2014), Postdoc at AAU (2014) Research Interests: Harmonic and EMI analysis in grid-tied converters High power density converter design Signal processing for converter modeling Reliability of power electronic systems Article Trends: Recent work emphasizes EMI/EMC in renewable energy systems, wide bandgap semiconductors (SiC/GaN), and reliability modeling for EVs and hydrogen production via electrolysis. Sub-fields include converter topologies, grid integration challenges, and AI-driven diagnostics. Scientific Awards: Equinor 2022 Prize (Denmark’s oldest engineering award) IEEE EMC Society Young Professional Award (2020) World’s Top 2% Highly Cited Scientist (Stanford, 2021–2025) Multiple best paper awards (IEEE, Applied Sciences, etc.) Grants & Editorial Roles: Recipient of grants from Innovation Fund Denmark (Supra-EMC project), Horizon Europe (SOLARIS), and industry partnerships. Serves as Area Editor for IEEE Transactions on Transportation Electrification , Associate Editor for IEEE Transactions on Power Electronics , and Editor-in-Chief of Circuit World Journal (2020–2025). Labs & Standards: Coordinator of the EMC Laboratory at Aalborg University. Member of IEC standardization Working Groups 6 and 8 (TC77A), focusing on EMC strategies for power grids.
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.
Jesper Nygård is a Professor at the Niels Bohr Institute, University of Copenhagen, specializing in solid state physics, nanophysics, and quantum technology. He leads the Center for Quantum Devices and has held leadership roles including Head of Section for Nanophysics and Solid State Physics (2007–2017) and Deputy Head of Research (2017–present). His research focuses on hybrid superconductor-semiconductor systems, nanowire-based quantum devices, and low-temperature quantum transport. PhD in experimental nanophysics (2000) and MSc/BSc in physics/mathematics from the University of Copenhagen International research experience at Harvard, Berkeley, and CNRS Grenoble His work bridges nanofabrication, quantum electronics, and Kondo physics, with recent publications analyzing nanowire junctions, microwave dynamics in superconducting systems, and heat dissipation mechanisms. He co-founded multiple technology startups and served as a Danish astronaut candidate (2005–2008). Scientific Awards: Member of the Royal Danish Society of Letters Member of the Danish Academy of Sciences
Casper Wied is a Research Fellow at the Niels Bohr Institute , University of Copenhagen, specializing in Solid State Physics, X-ray, and Neutron Scattering. His work focuses on advancing materials science through experimental techniques in condensed matter physics.
Nika Akopian is an Associate Professor and Group Leader at the Quantum Networks Group within the Department of Electrical and Photonics Engineering at the Technical University of Denmark (DTU). His research focuses on quantum nanophotonics, nanowire quantum dots, and multi-qubit photonic devices, with a particular emphasis on hybrid atomic-solid state systems and epsilon-near-zero materials for quantum networks. He leads the MultiQubit project funded by an ERC Consolidator Grant, exploring multi-qubit quantum photonic devices. Education includes a Ph.D. in Physics from the Technion – Israel Institute of Technology (2008), followed by postdoctoral research at Delft and Eindhoven Universities of Technology. Key awards include the ERC Consolidator Grant (2020), Villum Young Investigator Program (2014), and Veni Grant (2008). Research interests span quantum control of nanowire quantum dots, hybrid systems coupling quantum dots to atomic vapors, and epsilon-near-zero materials for integrated quantum networks. Major contributions include demonstrating frequency-locked quantum dot emission to atomic transitions and developing crystal-phase quantum dots in nanowires. Scientific awards highlight his work, including the IUPAP Young Author Award (2006) and Gutwirth Fellowship (2006). His team includes advisees such as A. Srikanth, R. Radhakrishnan, and D. Li. Current projects involve advancing quantum networks and multi-qubit photonic devices.
Henrik Jeldtoft Jensen is a Professor of Mathematical Physics and leads the Centre for Complexity Science at Imperial College London. His work spans multiple disciplines, focusing on the statistical mechanics of complex systems, with applications in physics, biology, neuroscience, and finance. Professor, Mathematical Physics Leader, Centre for Complexity Science Institution: Imperial College London His research interests lie at the intersection of theoretical physics and complex systems. He is best known for developing the Tangled Nature Model of evolving ecosystems, which has been extended into financial modeling through the Tangled Finance approach. His work in brain dynamics involves analyzing fMRI and EEG data using tools from statistical physics. He has made significant contributions to self-organized criticality and stochastic dynamics of complex systems, particularly in condensed matter and evolutionary contexts. The recent publications reflect a strong trend toward interdisciplinary complexity science, integrating concepts from physics, biology, economics, and neuroscience. Keywords across these works include complexity, statistical mechanics, dynamical systems, and network theory, with subfields ranging from neural avalanches to financial instability and biodiversity modeling. Henrik Jensen is the author of two influential books: Self-Organized Criticality and Stochastic Dynamics of Complex Systems (with Paolo Sibani), which have been widely cited across disciplines. He has supervised numerous PhD and postdoctoral researchers through the Centre for Complexity Science, though specific names are not listed. His research has been supported by grants from UK research councils and international collaborations, particularly in interdisciplinary complexity projects. He is affiliated with the Centre for Complexity Science, a multidisciplinary research hub at Imperial College London that brings together physicists, mathematicians, biologists, and social scientists to study complex adaptive systems.
Shinhee Yun is an Assistant Professor in the Department of Energy Conversion and Storage at the Technical University of Denmark. Her research focuses on advanced nanomaterials and functional oxides, with particular expertise in perovskite oxides, nanomembranes, and heterostructures. She leads investigations into strain engineering techniques and novel fabrication methods for energy-related applications. Her research explores material properties under engineered strain conditions, heterojunction interfaces, and nanoscale phenomena in transition metal oxides. Recent work advances freestanding oxide membrane synthesis and characterization, with applications in next-generation electronics and energy technologies. Key research trends include: Nanomembrane fabrication and strain control Ferroic properties in oxide heterostructures Surface and interface engineering Advanced characterization of quantum materials Heteroepitaxial growth techniques
Yiyu Ou is an Associate Professor in the Department of Electrical and Photonics Engineering at the Technical University of Denmark (DTU), where she leads research in optoelectronic devices, particularly light-emitting diodes (LEDs) and biomedical photonics. Her work bridges materials science, semiconductor engineering, and sustainable technology development. Department: Electrical and Photonics Engineering Institution: Technical University of Denmark (DTU) Research Focus: LED Systems, Silicon Carbide, Biomedical Implants Her research interests center on the development of advanced optoelectronic materials and devices, with a strong emphasis on nitride-based LEDs, fluorescent silicon carbide, and wireless optoelectronic biomedical implants. She explores novel packaging techniques, light extraction efficiency, and UV disinfection systems, contributing significantly to sustainable photonics and healthcare technologies. The recent trend in her publications shows a clear trajectory toward applied photonics in medicine and environmental health, including wireless implants, UV-B phototherapy, and wearable disinfection systems. Her work combines semiconductor physics with biomedical applications, demonstrating innovation in both materials and system integration. Scientific Awards and Recognition: No specific awards listed in the provided text. Yiyu Ou has served as Principal Investigator (PI) and supervisor on multiple research projects, including the DISOLE disinfection initiative and PhD supervision. Her grants focus on implantable UV-LED systems and innovative white LED light sources, often funded by Danish and European research councils. She collaborates extensively across disciplines, particularly with medical researchers and material scientists. She is affiliated with the Photonics group at DTU Fotonik, where her team works on diode lasers and LED systems. Research areas include porous SiC fabrication, hybrid white LEDs, and high-efficiency nitride devices, contributing to both fundamental science and commercial applications.
Battulga Munkhbat is an Associate Professor in the Department of Electrical and Photonics Engineering at the Technical University of Denmark (DTU), where he conducts cutting-edge research in quantum photonics and nanomaterials. His work focuses on developing quantum light sources using two-dimensional materials, particularly transition metal dichalcogenides such as WSe₂, for applications in optical quantum information technology. His research interests lie at the intersection of quantum optics, materials science, and nanophotonics. Key areas include: Quantum emitters in 2D materials Single-photon sources for quantum communication Strain and defect engineering in monolayer and bilayer systems Integration of quantum emitters with photonic devices Nanoengineering of TMD-based photonic platforms The recent trend in his publications highlights a strong focus on high-purity single-photon emission from bilayer and monolayer WSe₂, utilizing phonon-assisted excitation and strain control. His work often involves collaboration with experts in nanofabrication and theoretical modeling, aiming to enhance the performance and scalability of quantum photonic devices for future quantum networks. He is actively supervising multiple PhD students and leading projects that bridge fundamental physics with practical quantum technologies. His research is supported by active grants in quantum photonics and nanomaterial engineering, particularly in projects related to: Quantum Dot Emitters Integrated with SiN Devices for Remote Quantum Computing Nanoengineered 2D TMDs-based Photonic Devices for Optical Quantum Information Technology Quantum Light Sources for Optical Quantum Information Processing Dr. Munkhbat is part of a vibrant research lab at DTU that specializes in quantum light source development, working closely with Prof. Niels Gregersen and other collaborators in the field of integrated quantum photonics.
Peter Lodahl is a Professor in quantum physics and technology at the Niels Bohr Institute, University of Copenhagen, and serves as Director of the Hybrid Quantum Networks Hy-Q Center of Excellence. He leads the Quantum Photonics Group and holds the position of Deputy Section Leader of Quantum Optics at the institute. Lodahl has established himself as a leading researcher in quantum optics and quantum information processing with solid-state systems. His research focuses on developing fundamentally new quantum hardware for quantum-information science, specifically deterministic single-photon sources, spin-photon interfaces, and photonic quantum gates. His work has pioneered the demonstration that light emission can be fully controlled through intricate photonic nanostructures, enabling deterministic quantum interfaces between light and matter. His research spans quantum simulators, quantum repeaters, and quantum key distribution, all contributing to the development of a quantum internet. Lodahl's publication record shows a strong focus on quantum networks, photonic quantum technologies, and quantum information processing. His recent work demonstrates significant advances in deterministic photon sources, quantum entanglement generation, waveguide quantum electrodynamics, and practical implementations of quantum technologies. His research has shifted from fundamental demonstrations toward practical quantum applications and hardware development. EliteForsk Price (2016) ERC Advanced Grant (2015) ERC Consolidator Grant (2010) Young Researcher's Award by the Danish Research Council (2005) Lodahl has supervised 25 MSc students, 23 PhD students, and 17 postdocs since 2005. He has attracted over 200 MDKK in research funding from sources including ERC, Danish Research Council, VILLUM Foundation, Innovation Fund DK, and A.P.Møller Foundation. As Director of the Hy-Q Center of Excellence and Scientific Director for the Center of Quantum Innovation, he oversees significant research infrastructure and initiatives in quantum technology. He leads the Quantum Photonics Group at the Niels Bohr Institute and was PI for the Quantech infrastructure proposal accepted on the Danish Roadmap for Research infrastructure with a total budget of 40 MDKK. His group collaborates internationally and has developed numerous technologies including 5 patents in photonic quantum technology and a co-founded quantum-tech start-up company.
Robert Krarup Feidenhans'l is a Professor in X-ray Physics and Visiting Professor in Condensed Matter Physics at the Niels Bohr Institute, University of Copenhagen. His research bridges fundamental physics with practical applications in materials characterization, biological imaging, and nanotechnology through advanced X-ray techniques. Feidenhans'l earned his Master's degree in Physics and Mathematics in 1983 and his Ph.D. in Physics from the University of Aarhus in 1986, where he was awarded the A. Angelo prize. His career progressed from staff scientist at Risø National Laboratory to leadership positions including Head of the Materials Research Department at Risø, Professor at the Niels Bohr Institute, Vice Institute Leader for Research, and Interim Institute Leader. His research interests span Surface and Interface Science, X-ray Physics, Synchrotron Radiation, Materials Science, Crystallography, Nanoscience, and Biophysics. His work demonstrates a progression from fundamental materials research toward innovative applications of X-ray techniques in biological systems while maintaining strong contributions to materials characterization. With approximately 140 publications and an h-index of 31, his research has garnered over 3,940 citations as of 2012, reflecting significant impact across multiple disciplines. Feidenhans'l has held prestigious leadership positions including Chairman of the Council of European Synchrotron Radiation Facility (2006-2010, with a €90M annual budget and 600 employees), Chairman of the European XFEL Council (2010-present, overseeing a €1.1 billion construction project), and Director of DANSYNC/DANSCATT. He has served on advisory committees for major international facilities including MAXLAB in Lund, HASYLAB/DESY, and the LCLS in Stanford. As an educator, Feidenhans'l has supervised approximately 21 master's students and 15 Ph.D. students, currently guiding 6 Ph.D. and 8 master's students. He teaches core courses including Introduction to Solid State Physics, Experimental X-ray Physics, and Structural Tools in NanoScience. His leadership extends to chairing the PhD Committee at the Faculty of Sciences and serving on the Academic Council of the Faculty of Science at the University of Copenhagen. He has co-organized numerous international conferences and summer schools, including the Nordic Summerschool on Synchrotron Radiation and the International Conference on Solid Films and Surfaces.
Juan Maria García Lastra is a Professor and Head of the Atomic Scale Materials Modelling group in the Department of Energy Conversion and Storage at the Technical University of Denmark (DTU). His research focuses on theoretical studies of solid-state and molecular materials using advanced computational methodologies such as Density Functional Theory (DFT), Many-Body Perturbation Theory (MBPT), and Non-Equilibrium Green’s Functions (NEGF). Education: Ph.D. from the University of Cantabria (Spain), specializing in DFT developments. Postdoctoral research focused on energy-related materials including photovoltaic systems and battery technologies. Research interests include: Lithium-ion batteries, metal-air batteries, organic photovoltaics, heterogeneous catalysis, and electronic/thermal transport in nanomaterials like carbon nanotubes and graphene. His work contributes to UN Sustainable Development Goals through energy storage and conversion advancements. He supervises multiple PhD projects on topics like battery recycling strategies, computational design of energy materials, and machine learning applications in materials science. Collaborations span global institutions, with recent activities in sodium metal batteries, magnesium-sulfur battery electrolytes, and electrode design optimization. Labs/Groups: Leads the Atomic Scale Materials Modelling group at DTU Energy, focusing on computational methods for energy materials discovery and characterization.