
معرفی
Gregory Boebinger is a Courtesy Professor in the Department of Electrical & Computer Engineering at Florida State University (FSU) and Director of the National High Magnetic Field Laboratory (NHMFL). He holds a Ph.D. in Physics from MIT (1986), with earlier degrees including B.S. in Physics, Electrical Engineering, and Philosophy from Purdue University (1981), and a Certificate of Postgraduate Study in Physics from Churchill College, Cambridge (1982). His research focuses on condensed matter physics, particularly high magnetic field effects in quantum materials, superconductivity, and electronic phase transitions.
Key contributions include conceptual designs for ultra-high field magnets, studies of cuprate and iron-based superconductors, and investigations into quantum criticality and spin liquids. He has pioneered high-field techniques such as NMR spectroscopy up to 35 T and quantum oscillation analysis. His work bridges fundamental physics with advanced instrumentation development.
Awards and Memberships:
- Member, National Academy of Sciences (2021)
- Fellow, American Academy of Arts and Sciences (2017)
- Editorial Board, Annual Review of Condensed Matter Physics (2010)
- Fellow, AAAS (2007), APS (1996), and multiple foundation fellowships
Research Overview: His studies explore emergent phenomena in strongly correlated materials under extreme magnetic fields, including vortex dynamics, strange metal behavior, and field-induced phase transitions. Recent work addresses hydride superconductivity, topological insulators, and the interplay of magnetism and superconductivity in layered systems.
Grants & Leadership: As NHMFL Director, he oversees one of the world's premier magnet facilities, supporting cutting-edge research in materials science and condensed matter physics. His leadership includes developing pulsed-field facilities and advancing interdisciplinary collaborations.
Labs & Teams: Boebinger leads the NHMFL's multidisciplinary team, focusing on high-field instrumentation and its application to quantum materials, energy-related materials, and biomolecular systems.



