Launching of hyperbolic phonon-polaritons in h-BN slabs by resonant metal plasmonic antennas

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作者
P. Pons-Valencia
F. J. Alfaro-Mozaz
M. M. Wiecha
V. Biolek
I. Dolado
S. Vélez
P. Li
P. Alonso-González
F. Casanova
L. E. Hueso
L. Martín-Moreno
R. Hillenbrand
A. Y. Nikitin
机构
[1] CSIC-Universidad de Zaragoza,Instituto de Ciencia de Materiales de Aragón and Departamento de Física de la Materia Condensada
[2] CIC nanoGUNE,School of Optical and Electronic Information
[3] Huazhong University of Science and Technology,Departamento de Física
[4] Universidad de Oviedo,Physikalisches Institut
[5] IKERBASQUE,Institute of Physical Engineering
[6] Basque Foundation for Science,Department of Materials
[7] CIC NanoGUNE and EHU/UPV,undefined
[8] Donostia International Physics Center (DIPC),undefined
[9] Johann Wolfgang Goethe-Universität,undefined
[10] Brno University of Technology,undefined
[11] ETH Zürich,undefined
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摘要
Launching and manipulation of polaritons in van der Waals materials offers novel opportunities for field-enhanced molecular spectroscopy and photodetection, among other applications. Particularly, the highly confined hyperbolic phonon polaritons (HPhPs) in h-BN slabs attract growing interest for their capability of guiding light at the nanoscale. An efficient coupling between free space photons and HPhPs is, however, hampered by their large momentum mismatch. Here, we show —by far-field infrared spectroscopy, infrared nanoimaging and numerical simulations— that resonant metallic antennas can efficiently launch HPhPs in thin h-BN slabs. Despite the strong hybridization of HPhPs in the h-BN slab and Fabry-Pérot plasmonic resonances in the metal antenna, the efficiency of launching propagating HPhPs in h-BN by resonant antennas exceeds significantly that of the non-resonant ones. Our results provide fundamental insights into the launching of HPhPs in thin polar slabs by resonant plasmonic antennas, which will be crucial for phonon-polariton based nanophotonic devices.
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