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通过双色激发控制透明导电氧化物中的混合非线性。

Controlling hybrid nonlinearities in transparent conducting oxides via two-colour excitation.

机构信息

School of Engineering, University of Glasgow, Glasgow G12 8LT, UK.

School of Electrical and Computer Engineering and Birck Nanotechnology Center, Purdue University, West Lafayette, Indiana 47907, USA.

出版信息

Nat Commun. 2017 Jun 9;8:15829. doi: 10.1038/ncomms15829.

Abstract

Nanophotonics and metamaterials have revolutionized the way we think about optical space (ɛ,μ), enabling us to engineer the refractive index almost at will, to confine light to the smallest of the volumes, and to manipulate optical signals with extremely small footprints and energy requirements. Significant efforts are now devoted to finding suitable materials and strategies for the dynamic control of the optical properties. Transparent conductive oxides exhibit large ultrafast nonlinearities under both interband and intraband excitations. Here we show that combining these two effects in aluminium-doped zinc oxide via a two-colour laser field discloses new material functionalities. Owing to the independence of the two nonlinearities, the ultrafast temporal dynamics of the material permittivity can be designed by acting on the amplitude and delay of the two fields. We demonstrate the potential applications of this novel degree of freedom by dynamically addressing the modulation bandwidth and optical spectral tuning of a probe optical pulse.

摘要

纳米光子学和超材料彻底改变了我们对光学空间(ɛ,μ)的思考方式,使我们能够几乎随心所欲地设计折射率,将光限制在最小的体积内,并以极小的足迹和能量需求来操控光学信号。现在,人们正在努力寻找合适的材料和策略来实现对光学性能的动态控制。透明导电氧化物在带间和带内激发下都表现出很大的超快非线性。在这里,我们通过双色激光场在掺铝氧化锌中展示了这两种效应的结合,揭示了新的材料功能。由于这两种非线性的独立性,可以通过改变两个场的幅度和延迟来设计材料介电常数的超快时间动力学。我们通过动态控制探针光脉冲的调制带宽和光光谱调谐来演示了这种新颖自由度的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/485b/5472708/de6c9da3f164/ncomms15829-f1.jpg

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