| Literature DB >> 33764791 |
Qing Zhang1, Qingdong Ou2,3, Guangwei Hu1, Jingying Liu3, Zhigao Dai4, Michael S Fuhrer2,5, Qiaoliang Bao6, Cheng-Wei Qiu1.
Abstract
Surface phonon polaritons (SPhPs) in polar dielectrics offer new opportunities for infrared nanophotonics. However, bulk SPhPs inherently propagate isotropically with limited photon confinement, and how to collectively realize ultralarge confinement, in-plane hyperbolicity, and unidirectional propagation remains elusive. Here, we report an approach to solve the aforementioned issues of bulk SPhPs in one go by constructing a heterostructural interface between biaxial van der Waals material (e.g., α-MoO3) and bulk polar dielectric (e.g., SiC, AlN, and GaN). Because of anisotropy-oriented mode couplings, the hybridized SPhPs with a large confinement factor (>100) show in-plane hyperbolicity that has been switched to the orthogonal direction as compared to that in natural α-MoO3. More interestingly, this proof of concept allows steerable and unidirectional polariton excitation by suspending α-MoO3 on patterned SiC air cavities. Our finding exemplifies a generalizable framework to manipulate the flow of nanolight in many other hybrid systems consisting of anisotropic materials and polar dielectrics.Entities:
Keywords: in-plane hyperbolicity; nanocavities; phonon polaritons; polar crystals; van der Waals materials
Year: 2021 PMID: 33764791 DOI: 10.1021/acs.nanolett.1c00281
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189