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金属纳米颗粒-石墨烯纳米盘-量子点混合系统中的光学多稳态

Optical Multistability in the Metal Nanoparticle-Graphene Nanodisk-Quantum Dot Hybrid Systems.

作者信息

Tohari Mariam M, Alqahtani Moteb M, Lyras Andreas

机构信息

Department of Physics, College of Science, King Khalid University, Abha 61413, Saudi Arabia.

Department of Physics and Astronomy, College of Science, King Saud University, Riyadh 11451, Saudi Arabia.

出版信息

Nanomaterials (Basel). 2020 Aug 27;10(9):1687. doi: 10.3390/nano10091687.

Abstract

Hybrid nanoplasmonic systems can provide a promising platform of potential nonlinear applications due to the enhancement of optical fields near their surfaces in addition to the control of strong light-matter interactions they can afford. We theoretically investigated the optical multistability of a probe field that circulated along a unidirectional ring cavity containing a metal nanoparticle-graphene nanodisk-quantum dot hybrid system; the quantum dot was modeled as a three-level atomic system of Lambda configuration interacting with probe and control fields in the optical region of the electromagnetic spectrum. We show that the threshold and degree of multistability can be controlled by the geometry of the setup, the size of metal nanoparticles, the carrier mobility in the graphene nanodisk and the detunings of probe and control fields. We found that under electromagnetically-induced transparency conditions the system exhibits enhanced optical multistability with an ultralow threshold in the case of two-photon resonance with high carrier mobility in the graphene nanodisk. Moreover, we calculated the limits of the controllable parameters within which the switching between optical multistability and bistability can occur. We show that our proposed hybrid plasmonic system can be useful for efficient all-optical switches and logic-gate elements for quantum computing and quantum information processing.

摘要

混合纳米等离子体系统由于其表面附近光场的增强以及能够实现的强光与物质相互作用的控制,可为潜在的非线性应用提供一个有前景的平台。我们从理论上研究了沿包含金属纳米颗粒 - 石墨烯纳米盘 - 量子点混合系统的单向环形腔循环的探测场的光学多稳定性;量子点被建模为具有拉姆达(Lambda)构型的三能级原子系统,在电磁频谱的光学区域与探测场和控制场相互作用。我们表明,多稳定性的阈值和程度可以通过装置的几何结构、金属纳米颗粒的尺寸、石墨烯纳米盘中的载流子迁移率以及探测场和控制场的失谐来控制。我们发现,在电磁诱导透明条件下,当石墨烯纳米盘中具有高载流子迁移率且处于双光子共振时,该系统表现出增强的光学多稳定性且阈值超低。此外,我们计算了可控制参数的范围,在该范围内可以发生光学多稳定性和双稳性之间的切换。我们表明,我们提出的混合等离子体系统可用于量子计算和量子信息处理中的高效全光开关和逻辑门元件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/daf3/7558766/b8311596620a/nanomaterials-10-01687-g001.jpg

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