材料科学
光子学
光学
光电子学
飞秒
镜头(地质)
超材料
消色差透镜
折射率
全息术
物理
激光器
作者
Qian Wang,Edward T. F. Rogers,Behrad Gholipour,Chih‐Ming Wang,Guanghui Yuan,Jinghua Teng,Nikolay I. Zheludev
出处
期刊:Nature Photonics
[Springer Nature]
日期:2015-12-21
卷期号:10 (1): 60-65
被引量:1054
标识
DOI:10.1038/nphoton.2015.247
摘要
Photonic components with adjustable parameters, such as variable-focal-length lenses or spectral filters, which can change functionality upon optical stimulation, could offer numerous useful applications. Tuning of such components is conventionally achieved by either micro- or nanomechanical actuation of their constituent parts, by stretching or by heating. Here, we report a novel approach for making reconfigurable optical components that are created with light in a non-volatile and reversible fashion. Such components are written, erased and rewritten as two-dimensional binary or greyscale patterns into a nanoscale film of phase-change material by inducing a refractive-index-changing phase transition with tailored trains of femtosecond pulses. We combine germanium–antimony–tellurium-based films with a diffraction-limited resolution optical writing process to demonstrate a variety of devices: visible-range reconfigurable bichromatic and multi-focus Fresnel zone plates, a super-oscillatory lens with subwavelength focus, a greyscale hologram, and a dielectric metamaterial with on-demand reflection and transmission resonances. A metasurface composed of pixels of optically switchable phase change material yields a photonic platform that can be configured on demand to perform a variety of optical tasks.
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