Nonscattering-to-Superscattering Switch with Phase-Change Materials

被引:52
作者
Lepeshov, Sergey [1 ]
Krasnok, Alex [2 ]
Alu, Andrea [2 ]
机构
[1] ITMO Univ, St Petersburg 197101, Russia
[2] CUNY, Adv Sci Res Ctr, Photon Initiat, New York, NY 10031 USA
基金
美国国家科学基金会;
关键词
light scattering; cloaking; anapole; superscattering; tuning; phase-change materials; Kerker regime; 3RD HARMONIC-GENERATION; CLOAKING; NANOPHOTONICS; NANOANTENNAS;
D O I
10.1021/acsphotonics.9b00674
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Phase-change materials (PCMs) can switch between different crystalline states as a function of an external bias, offering a pronounced change of their dielectric function. To take full advantage of these features for active photonics and information storage, stand-alone PCMs are not sufficient because the phase transition requires strong pump fields. Here, we explore hybrid metal-semiconductor core-shell nanoantennas loaded with PCMs, enabling a drastic switch in scattering features as the load changes its phase. Large scattering, beyond the limits of small resonant particles, is achieved by spectrally matching different Mie resonances, while scattering cancellation and cloaking is achieved at anapole state with out-of-phase electric dipole oscillations in the PCM shell and Ag core. We show that by tuning the PCM crystallinity, we can largely vary total (similar to 15 times) and forward (similar to 100 times) scattering. Remarkably, a substantial reconfiguration of the scattering pattern from Kerker (zero backward) to anti-Kerker (almost zero forward) regimes with little change (similar to 5%) in crystallinity is predicted, which makes this structure promising for low-intensity nonlinear photonics.
引用
收藏
页码:2126 / 2132
页数:13
相关论文
共 57 条
[11]   Thermoplasmonics modeling: A Green's function approach [J].
Baffou, Guillaume ;
Quidant, Romain ;
Girard, Christian .
PHYSICAL REVIEW B, 2010, 82 (16)
[12]   All-dielectric nanophotonics: the quest for better materials and fabrication techniques [J].
Baranov, Denis G. ;
Zuev, Dmitry A. ;
Lepeshov, Sergey I. ;
Kotov, Oleg V. ;
Krasnok, Alexander E. ;
Evlyukhin, Andrey B. ;
Chichkov, Boris N. .
OPTICA, 2017, 4 (07) :814-825
[13]   Optical Anapoles: Concepts and Applications [J].
Baryshnikova, Kseniia V. ;
Smirnova, Daria A. ;
Luk'yanchuk, Boris S. ;
Kivshar, Yuri S. .
ADVANCED OPTICAL MATERIALS, 2019, 7 (14)
[14]  
Bohren C. F., 1998, Wiley Science Series, DOI 10.1002/9783527618156
[15]   Optical cloaking with metamaterials [J].
Cai, Wenshan ;
Chettiar, Uday K. ;
Kildishev, Alexander V. ;
Shalaev, Vladimir M. .
NATURE PHOTONICS, 2007, 1 (04) :224-227
[16]   Transverse Electromagnetic Modes in Aperture Waveguides Containing a Metamaterial with Extreme Anisotropy [J].
Catrysse, Peter B. ;
Fan, Shanhui .
PHYSICAL REVIEW LETTERS, 2011, 106 (22)
[17]   Invisibility and Cloaking Based on Scattering Cancellation [J].
Chen, Pai-Yen ;
Soric, Jason ;
Alu, Andrea .
ADVANCED MATERIALS, 2012, 24 (44) :OP281-OP304
[18]   Subwavelength Imaging Using Phase-Conjugating Nonlinear Nanoantenna Arrays [J].
Chen, Pai-Yen ;
Alu, Andrea .
NANO LETTERS, 2011, 11 (12) :5514-5518
[19]   Resonant dielectric nanostructures: a low-loss platform for functional nanophotonics [J].
Decker, Manuel ;
Staude, Isabelle .
JOURNAL OF OPTICS, 2016, 18 (10)
[20]   Imaging and steering an optical wireless nanoantenna link [J].
Dregely, Daniel ;
Lindfors, Klas ;
Lippitz, Markus ;
Engheta, Nader ;
Totzeck, Michael ;
Giessen, Harald .
NATURE COMMUNICATIONS, 2014, 5