Extraordinary nonlinear transmission modulation in a doubly-resonant optomechanical structure (Conference Presentation)

A. Khelif, F. Baida, V. Laude, A. Belkhir, M. Addouche, S. Benchabane
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Abstract

Nanoscale-engineered optical systems have been thoroughly investigated for a few decades due to their fascinating abilities to confine and enhance electromagnetic fields in very sub-wavelength and have a large number of applications in domains like biosensing, enhanced-Raman spectroscopy, metamaterials, photothermal therapy, and plasmomechanics. In addition, the recent astonishing ability of phononic crystals to control acoustic or elastic waves has been demonstrated. As an elastic wave modulates in time both the shape and the refractive index of the supporting structure, it is possible to influence the optical response of the same system. We propose a subwavelength optomechanical structure that instead relies on a double resonance to achieve strong modulation at near-infrared wavelengths. Precisely, we investigate the coupling between an optical Fano resonant mode and phononic resonances carried within a 2D metamaterial. The latter was designed to exhibit simultaneous phononic and photonic high Q-factor resonances and it is composed of silver slits deposited on a lithium niobate substrate. The phononic properties are first determined and show that several vibration modes can be electrically induced through the specific design of the structure that behaves as an interdigitated transducer. The structure geometries for each mode is then determined over an acoustic period and used to point out the optical transmission modifications when the structure is illuminated at the normal incidence by a linearly polarized plane wave. Original results are obtained for some modes (the first two odd phononic modes) showing a very efficient and non-linear modification of the transmitted intensity. Different operating procedures are then explored by changing the operation optical wavelength value. This study opens the way to the design of a new generation of extremely miniaturized optoacoustic devices.
双共振光机械结构中的非线性传输调制(会议报告)
纳米工程光学系统由于其在亚波长范围内限制和增强电磁场的迷人能力,在生物传感、增强拉曼光谱、超材料、光热治疗和等离子体力学等领域有大量应用,已经被深入研究了几十年。此外,最近声子晶体控制声波或弹性波的惊人能力已被证明。由于弹性波可以及时调制支撑结构的形状和折射率,因此有可能影响同一系统的光学响应。我们提出了一种亚波长光机械结构,它依靠双共振来实现近红外波长的强调制。准确地说,我们研究了光学范诺共振模式和二维超材料中携带的声子共振之间的耦合。后者被设计为同时表现出声子和光子的高q因子共振,它由沉积在铌酸锂衬底上的银狭缝组成。声子特性首先确定,并表明,几种振动模式可以电诱导通过结构的特定设计,作为一个交叉换能器的行为。然后在声学周期内确定每种模式的结构几何形状,并用于指出当结构被线偏振平面波以法向入射照射时的光传输修改。一些模式(前两个奇数声子模式)的原始结果显示了传输强度的非常有效的非线性修改。然后通过改变操作光波长值来探索不同的操作程序。这项研究为新一代极小型化光声器件的设计开辟了道路。
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