期刊论文详细信息
Nanophotonics
Substrate-mediated hyperbolic phonon polaritons in MoO 3
article
Jeffrey J. Schwartz1  Andrea Centrone1  Son T. Le1  Sergiy Krylyuk4  Curt A. Richter1  Albert V. Davydov4 
[1] Physical Measurement Laboratory, National Institute of Standards and Technology;Institute for Research in Electronics and Applied Physics, University of Maryland, College Park;Theiss Research;Material Measurement Laboratory, National Institute of Standards and Technology
关键词: 2D materials;    hyperbolic materials;    phonon polaritons;    photothermal induced resonance;    subwavelength optical confinement;   
DOI  :  10.1515/nanoph-2020-0640
学科分类:社会科学、人文和艺术(综合)
来源: De Gruyter
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【 摘 要 】

Hyperbolic phonon polaritons (HPhPs) are hybrid excitations of light and coherent lattice vibrations that exist in strongly optically anisotropic media, including two-dimensional materials (e.g., MoO 3 ). These polaritons propagate through the material’s volume with long lifetimes, enabling novel mid-infrared nanophotonic applications by compressing light to sub-diffractional dimensions. Here, the dispersion relations and HPhP lifetimes (up to ≈12 ps) in single-crystalline α-MoO 3 are determined by Fourier analysis of real-space, nanoscale-resolution polariton images obtained with the photothermal induced resonance (PTIR) technique. Measurements of MoO 3 crystals deposited on periodic gratings show longer HPhPs propagation lengths and lifetimes (≈2×), and lower optical compressions, in suspended regions compared with regions in direct contact with the substrate. Additionally, PTIR data reveal MoO 3 subsurface defects, which have a negligible effect on HPhP propagation, as well as polymeric contaminants localized under parts of the MoO 3 crystals, which are derived from sample preparation. This work highlights the ability to engineer substrate-defined nanophotonic structures from layered anisotropic materials.

【 授权许可】

CC BY   

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