English

Twist-tunable Polaritonic Nanoresonators in a van der Waals Crystal

Optics 2022-07-01 v1 Mesoscale and Nanoscale Physics

Abstract

Optical nanoresonators are fundamental building blocks in a number of nanotechnology applications (e.g. in spectroscopy) due to their ability to efficiently confine light at the nanoscale. Recently, nanoresonators based on the excitation of phonon polaritons (PhPs) - light coupled to lattice vibrations - in polar crystals (e.g. SiC, or h-BN) have attracted much attention due to their strong field confinement, high-quality factors, and potential to enhance the photonic density of states at mid-infrared (IR) frequencies. Here, we go one step further by introducing PhPs nanoresonators that not only exhibit these extraordinary properties but also incorporate a new degree of freedom - twist tuning, i.e. the possibility to be spectrally controlled by a simple rotation. To that end, we both take advantage of the low-loss in-plane hyperbolic propagation of PhPs in the van der Waals crystal α\alpha-MoO3_3, and realize dielectric engineering of a pristine α\alpha-MoO3_3 slab placed on top of metal ribbon grating, which preserves the high-quality of the polaritonic resonances. By simple rotating the α\alpha-MoO3_3 slab in the plane (from 0 to 45^{\circ}), we demonstrate via far- and near-field measurements that the narrow polaritonic resonances (with quality factors Q up to 200) can be tuned in a broad range (up to 32 cm1^{-1}, i.e up 6 ~ times its full width at half maximum, FWHM ~ 5 cm1^{-1}). Our results open the door to the development of tunable low-loss nanotechnologies at IR frequencies with application in sensing, emission or photodetection.

Keywords

Cite

@article{arxiv.2206.14886,
  title  = {Twist-tunable Polaritonic Nanoresonators in a van der Waals Crystal},
  author = {O. G. Matveeva and A. I. F. Tresguerres-Mata and R. V. Kirtaev and K. V. Voronin and J. Taboada-Gutiérrez and C. Lanza-García and J. Duan and J. Martín-Sánchez and V. S. Volkov and P. Alonso-González and A. Y. Nikitin},
  journal= {arXiv preprint arXiv:2206.14886},
  year   = {2022}
}

Comments

34 pages, 10 figures, including supplementary information. Submitted to Nano Letters