Zotev Panaiot G, Wang Yue, Sortino Luca, Severs Millard Toby, Mullin Nic, Conteduca Donato, Shagar Mostafa, Genco Armando, Hobbs Jamie K, Krauss Thomas F, Tartakovskii Alexander I
Department of Physics and Astronomy, University of Sheffield, Sheffield S3 7RH, U.K.
Department of Physics, University of York, York YO10 5DD, U.K.
ACS Nano. 2022 Apr 26;16(4):6493-6505. doi: 10.1021/acsnano.2c00802. Epub 2022 Apr 6.
Transition metal dichalcogenides have emerged as promising materials for nanophotonic resonators because of their large refractive index, low absorption within a large portion of the visible spectrum, and compatibility with a wide range of substrates. Herein, we use these properties to fabricate WS double-pillar nanoantennas in a variety of geometries enabled by the anisotropy in the crystal structure. Using dark-field spectroscopy, we reveal multiple Mie resonances, to which we couple WSe monolayer photoluminescence and achieve Purcell enhancement and an increased fluorescence by factors up to 240 for dimer gaps of 150 nm. We introduce postfabrication atomic force microscope repositioning and rotation of dimer nanoantennas, achieving gaps as small as 10 ± 5 nm, which enables a host of potential applications, including strong Purcell enhancement of single-photon emitters and optical trapping, which we study in simulations. Our findings highlight the advantages of using transition metal dichalcogenides for nanophotonics by exploring applications enabled by their properties.
过渡金属二硫属化物因其具有大折射率、在可见光谱的大部分范围内低吸收以及与多种衬底的兼容性,已成为纳米光子谐振器的有前途的材料。在此,我们利用这些特性,通过晶体结构中的各向异性,制造出各种几何形状的WS双柱纳米天线。使用暗场光谱,我们揭示了多个米氏共振,我们将WSe单层光致发光耦合到这些共振上,并实现了珀塞尔增强,对于150nm的二聚体间隙,荧光增强因子高达240。我们引入了制造后原子力显微镜对二聚体纳米天线的重新定位和旋转,实现了小至10±5nm的间隙,这使得包括单光子发射器的强珀塞尔增强和光学捕获在内的一系列潜在应用成为可能,我们在模拟中对其进行了研究。我们的发现通过探索由其特性实现的应用,突出了使用过渡金属二硫属化物用于纳米光子学的优势。