Magnetospectroscopy of Thin Film BCS Superconductors in High-Q Terahertz Cavities
ORAL
Abstract
Novel phenomena in materials are predicted and being explored in optical cavities in the complete absence of any external fields other than the quantum vacuum, or zero-point, electromagnetic fields. One of the most fascinating proposals is the cavity-induced modifications of the superconducting state. Here, we present the results of our studies on thin superconducting niobium nitride (NbN) films inside high-Q terahertz cavities in search of some of the recently predicted phenomena of cavity-enhanced, cavity-mediated, and cavity-induced superconductivity. We performed terahertz time-domain spectroscopy measurements of the NbN films inside one-dimensional photonic crystal cavities at various temperatures and magnetic fields. We analyzed the optical conductivity of the films in free space based on the Mattis-Bardeen formalism and the film transmittance in the cavity using the transfer matrix method with the optical constants obtained in free space. Our results suggest that the terahertz complex conductivity of the NbN film is modified when the film is placed inside the cavity.
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Presenters
Hongjing Xu
Rice University
Authors
Hongjing Xu
Rice University
Ningxu Zhu
University of Science and Technology of China
Dasom Kim
Rice University
Eichi Yoshizaki
Rice University
Fuyang Tay
Rice University, Columbia University
I-Te Lu
Max Planck Institute for the Structure & Dynamics of Matter
T. Elijah Kritzell
Rice University
Jacques Doumani
Rice University
Hongkai Shi
Nanjing University
Motoaki Bamba
Yokohama National University
Xiaoqing Jia
Nanjing University
Angel Rubio
Max Planck Institute for the Structure & Dynamics of Matter, Max Planck Institute for the Structure & Dynamics of Matter; Flatiron Institute's Center for Computational Quantum Physics (CCQ) & Initiative for Computational Catalysis (ICC)