等离子体子
飞秒
超材料
纳米光子学
光开关
材料科学
折射率
光子超材料
表面等离子共振
光电子学
共振(粒子物理)
波长
变换光学
非线性光学
光学
物理
纳米技术
纳米颗粒
激光器
粒子物理学
作者
Tanmay Bhowmik,Bodhan Chakraborty,Debabrata Sikdar
出处
期刊:Optics Letters
[Optica Publishing Group]
日期:2024-03-27
卷期号:49 (9): 2397-2397
被引量:1
摘要
Metamaterials opened a new realm to control light–matter interactions at sub-wavelength scale by engineering meta-atoms. Recently, the integration of several emerging nonlinear materials with metamaterial structures enables ultra-fast all-optical switching at the nanoscale and thus brings enormous possibilities to realize next-generation optical communication systems. This Letter presents a novel, to the best of our knowledge, design of plasmonic metamaterials for high-contrast femtosecond all-optical switching. We leverage magnetic plasmon (MP) resonance combined with the nonlinear effects of an epsilon-near-zero (ENZ)-material. The proposed design comprises a periodic array of two closely spaced Au-nanogratings deposited on an optically thick Au-substrate to excite MP-resonance. To enable a dynamically tunable resonance, the nanogrooves in meta-atoms are filled with an ENZ-material, cadmium-oxide (CdO). The intraband transition-induced optical nonlinearities in the ENZ-medium are studied using a two-temperature model. The MP-resonance ensures strong light–matter interactions enabling enhancement of the nonlinearities of the proposed structure. We observe that the pump-induced refractive index change in the CdO layer causes a redshift of the MP-resonance dip wavelength in the reflectance spectrum, leading to a high modulation depth of 0.83 at 1.55 µm. With an ultra-fast response time of 776 fs while maintaining a low pump-fluence of 75 µJ/cm 2 , the proposed metamaterial could help in realizing switches for next-generation optical computation systems.
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