| Literature DB >> 33998712 |
Yingjie Wu1, Qingdong Ou1,2, Shaohua Dong3, Guangwei Hu3, Guangyuan Si4, Zhigao Dai5, Cheng-Wei Qiu3, Michael S Fuhrer2,6, Sudha Mokkapati1, Qiaoliang Bao7.
Abstract
Phonon polaritons-light coupled to lattice vibrations-in polar van der Waals crystals offer unprecedented opportunities for controlling light at the nanoscale due to their anisotropic and ultralow-loss propagation. While their analog plasmon polaritons-light coupled to electron oscillations-have long been studied and exhibit interesting reflections at geometrical edges and electronic boundaries, whether phonon polaritons can be reflected by such barriers has been elusive. Here, the effective and tunable reflection of phonon polaritons at embedded interfaces formed in hydrogen-intercalated α-MoO3 flakes is elaborated upon. Without breaking geometrical continuity, such intercalation interfaces can reflect phonon polaritons with low losses, yielding the distinct phase changes of -0.8π and -0.3π associated with polariton propagation, high efficiency of 50%, and potential electrical tunability. The results point to a new approach to construct on-demand polariton reflectors, phase modulators, and retarders, which may be transplanted into building future polaritonic circuits using van der Waals crystals.Entities:
Keywords: nanophotonics; phonon polaritons; polariton reflection
Year: 2021 PMID: 33998712 DOI: 10.1002/adma.202008070
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849