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热电子转移加速光的相位和偏振的超快控制

Ultrafast Control of Phase and Polarization of Light Expedited by Hot-Electron Transfer.

作者信息

Taghinejad Mohammad, Taghinejad Hossein, Xu Zihao, Lee Kyu-Tae, Rodrigues Sean P, Yan Jiahao, Adibi Ali, Lian Tianquan, Cai Wenshan

机构信息

School of Electrical and Computer Engineering , Georgia Institute of Technology , 777 Atlantic Drive NW , Atlanta , Georgia 30332-0250 , United States.

Department of Chemistry , Emory University , 1515 Dickey Drive NE , Atlanta , Georgia 30322 , United States.

出版信息

Nano Lett. 2018 Sep 12;18(9):5544-5551. doi: 10.1021/acs.nanolett.8b01946. Epub 2018 Aug 7.

Abstract

All-optical modulation is an entangled part of ultrafast nonlinear optics with promising impacts on tunable optical devices in the future. Current advancements in all-optical control predominantly offer modulation by means of altering light intensity, while the ultrafast manipulation of other attributes of light have yet to be further explored. Here, we demonstrate the active modulation of the phase, polarization, and amplitude of light through the nonlinear modification of the optical response of a plasmonic crystal that supports subradiant, high Q, and polarization-selective resonance modes. The designed mode is exclusively accessible via TM-polarized light, which enables significant phase modulation and polarization conversion within the visible spectrum. To tailor the device performance in the time domain, we exploit the ultrafast transport dynamics of hot electrons at the interface of plasmonic metals and charge acceptor materials to facilitate an ultrafast switching speed. In addition, the operating wavelength of the proposed device can be tuned through the control of the in-plane momentum of light. Our work reveals the viability of dynamic phase and polarization control in plasmonic systems for all-optical switching and data processing.

摘要

全光调制是超快非线性光学中一个相互关联的部分,对未来的可调谐光学器件有着潜在的重要影响。目前全光控制的进展主要是通过改变光强度来实现调制,而对光的其他属性的超快操纵还有待进一步探索。在此,我们展示了通过对支持亚辐射、高Q值和偏振选择性共振模式的等离子体晶体的光学响应进行非线性修改,来实现对光的相位、偏振和振幅的主动调制。所设计的模式只能通过TM偏振光访问,这使得在可见光谱范围内能够实现显著的相位调制和偏振转换。为了在时域中调整器件性能,我们利用了等离子体金属与电荷受体材料界面处热电子的超快输运动力学,以实现超快的开关速度。此外,所提出器件的工作波长可以通过控制光的面内动量来调节。我们的工作揭示了等离子体系统中动态相位和偏振控制在全光开关和数据处理方面的可行性。

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