Long-range optical coupling with epsilon-near-zero materials
Abstract
Abstract Long-range resonant quantum tunneling of electrons happens across potential barriers when the wavefunction interferes constructively outside the barrier. Here we demonstrate an analogy in optical systems based on epsilon-near-zero materials, achieving phase-modulated, long-range optical interactions between transparent semiconducting oxide layers beyond the evanescent photonic coupling. Distinct from weak thin-film interference, intense electromagnetic fields confined within the epsilon-near-zero thin films show anti-correlated intensity oscillations as a function of interlayer separation up to hundreds of microns. The oscillatory, anti-correlated electromagnetic field intensities were probed by second harmonic generation from wedged indium tin oxide multilayers. Such a system that hosts subwavelength mode footprint and simultaneously long-range radiative coupling offers prospects for long-distance optical communication, large-scale photonic circuits, and hybrid quantum photonic systems.
Article Details
Authors (12)
Danqing Wang
Zheyu Lu
Sorren Warkander
Chemical Sciences Division, Lawrence Berkeley Lab 2 , Berkeley, California 94720,
Niharika Gupta
Qingjun Wang
Penghong Ci
Ruihan Guo
Jiachen Li
Department of Chemistry
Ali Javey
Electrical Engineering and Computer Sciences, University of California
Jie Yao
Feng Wang
Junqiao Wu