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等离子体中的热电子辅助飞秒全光调制。

Hot-Electron-Assisted Femtosecond All-Optical Modulation in Plasmonics.

机构信息

School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

Department of Chemistry, Emory University, Atlanta, GA, 30322, USA.

出版信息

Adv Mater. 2018 Mar;30(9). doi: 10.1002/adma.201704915. Epub 2018 Jan 15.

Abstract

The optical Kerr nonlinearity of plasmonic metals provides enticing prospects for developing reconfigurable and ultracompact all-optical modulators. In nanostructured metals, the coherent coupling of light energy to plasmon resonances creates a nonequilibrium electron distribution at an elevated electron temperature that gives rise to significant Kerr optical nonlinearities. Although enhanced nonlinear responses of metals facilitate the realization of efficient modulation devices, the intrinsically slow relaxation dynamics of the photoexcited carriers, primarily governed by electron-phonon interactions, impedes ultrafast all-optical modulation. Here, femtosecond (≈190 fs) all-optical modulation in plasmonic systems via the activation of relaxation pathways for hot electrons at the interface of metals and electron acceptor materials, following an on-resonance excitation of subradiant lattice plasmon modes, is demonstrated. Both the relaxation kinetics and the optical nonlinearity can be actively tuned by leveraging the spectral response of the plasmonic design in the linear regime. The findings offer an opportunity to exploit hot-electron-induced nonlinearities for design of self-contained, ultrafast, and low-power all-optical modulators based on plasmonic platforms.

摘要

等离子体金属的光克尔非线性为开发可重构和超紧凑全光调制器提供了诱人的前景。在纳米结构金属中,光能与等离子体共振的相干耦合会在升高的电子温度下产生非平衡电子分布,从而产生显著的克尔光非线性。尽管金属增强的非线性响应有助于实现高效调制器件,但光激发载流子的固有慢弛豫动力学主要受电子-声子相互作用的控制,阻碍了超快全光调制。本文通过在金属和电子受体材料界面处激活热电子的弛豫途径,在亚辐射晶格等离子体模式的共振激发下,展示了在等离子体系统中通过飞秒(≈190fs)全光调制。通过利用等离子体设计在线性状态下的光谱响应,可以主动调整弛豫动力学和光学非线性。这些发现为设计基于等离子体平台的自包含、超快速和低功耗全光调制器提供了利用热电子诱导非线性的机会。

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