Mass Fabrication of WS2 Nanodisks and their Scattering Properties

Churong Ma, Fangrong Zhou, Pengfei Huang, Mengmeng Li, Feng Zhao, Yingqi Liu, Chun Du, Xiang Li, B. Guan, Kai Chen
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引用次数: 3

Abstract

High‐index all‐dielectric resonators have been developed into an important platform for light manipulation at the nanoscale over the past decade. Although they are widely used as 2D materials, transition metal dichalcogenides (TMDCs), as an emerging all‐dielectric material, have also been used to fabricate optical nanoantennas that support multipolar Mie resonances. However, their fabrication depends heavily on electron‐beam lithography (EBL) or focused ion beam (FIB), which is expensive and time‐consuming for practical applications. To address this issue, here, a fast low‐cost method is put forward which combines polystyrene (PS) nanospheres with physical vapor deposition by electron‐beam evaporation and magnetron sputtering to fabricate WS2 nanodisks in a mass‐production manner. After annealing, the A‐ and B‐exciton features as well as anapole states are observed in the scattering spectra of WS2 nanodisks. The light scattering anisotropy of individual WS2 nanodisks and spectral tunability of the anapole are studied. In addition, absorption enhancement due to the strong field localization of anapole states in hexagonal WS2 nanodisk arrays is numerically demonstrated. This work manifests that this etching‐free method is promising for fabrication of scalable TMDC nanodisks suitable for practical applications.
WS2纳米片的大规模制备及其散射特性
在过去的十年中,高折射率全介电谐振器已经发展成为纳米尺度光操纵的重要平台。作为一种新兴的全介电材料,过渡金属二硫族化合物(TMDCs)虽然被广泛用作二维材料,但也被用于制造支持多极米氏共振的光学纳米天线。然而,它们的制造在很大程度上依赖于电子束光刻(EBL)或聚焦离子束(FIB),这对于实际应用来说是昂贵和耗时的。为了解决这一问题,本文提出了一种快速低成本的方法,将聚苯乙烯(PS)纳米球与电子束蒸发和磁控溅射的物理气相沉积相结合,以大规模生产的方式制备WS2纳米盘。退火后,WS2纳米片的散射光谱具有A‐和B‐激子特征以及类似极点态。研究了WS2纳米片的光散射各向异性和模拟极点的光谱可调性。此外,通过数值模拟证明了六方WS2纳米盘阵列中模拟极点态的强场局域化对吸收的增强作用。这项工作表明,这种无蚀刻的方法有希望制造适合实际应用的可扩展TMDC纳米盘。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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