Linear and nonlinear optical properties of dewetted SiGe islands

被引:2
|
作者
Fagiani L. [1 ,2 ]
Granchi N. [3 ]
Zilli A. [1 ]
Barri C. [1 ,2 ]
Rusconi F. [1 ]
Montanari M. [3 ]
Mafakheri E. [2 ]
Celebrano M. [1 ]
Bouabdellaoui M. [4 ]
Abbarchi M. [4 ]
Intonti F. [3 ]
Khursheed A. [5 ]
Biagioni P. [6 ]
Finazzi M. [1 ]
Vincenti M.A. [5 ]
Bollani M. [2 ]
机构
[1] Department of Physics, Politecnico di Milano, Milan
[2] Institute of Photonic and Nanotechnology - Consiglio Nazionale delle Ricerche, LNESS Laboratory, Como
[3] LENS and Department of Physics and Astronomy, University of Florence, Sesto Fiorentino
[4] Aix Marseille Univ, Université de Toulon, CNRS, IM2NP, Marseille
[5] Department of Electrical and Computer Engineering, National University of Singapore
[6] Department of Information Engineering, University of Brescia, Brescia
来源
Optical Materials: X | 2022年 / 13卷
关键词
Mie resonator; SiGe nanostructures; Solid state dewetting; Third- harmonic generation;
D O I
10.1016/j.omx.2021.100116
中图分类号
学科分类号
摘要
We propose to exploit the natural mechanical instability of thin solid films to form regular patterns of monocrystalline atomically smooth silicon and germanium nanostructures that cannot be realized with conventional methods. The solid-state dewetting dynamics is guided by pre-patterning the sample by a combination of electron-beam lithography and reactive-ion etching, obtaining precise control over number, size, shape, and relative position of the final Si1-xGex structures. Here we describe our progress in the spectroscopic investigation of individual dewetted Si1-xGex nanoislands: in the linear regime, bright Mie-type localized resonances are detected in the visible spectral range, with a spectral position that can be tuned by modifying the size of the nanoparticles. In the non-linear regime, instead, sizable third-harmonic generation is observed at the level of single islands. We believe that these results will be pivotal to a novel approach in spectral filtering, sensing and structural color with all-dielectric photonic devices. © 2021 The Author(s)
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