【2h】

Active quantum plasmonics

机译:有源量子等离子体

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摘要

The ability of localized surface plasmons to squeeze light and engineer nanoscale electromagnetic fields through electron-photon coupling at dimensions below the wavelength has turned plasmonics into a driving tool in a variety of technological applications, targeting novel and more efficient optoelectronic processes. In this context, the development of active control of plasmon excitations is a major fundamental and practical challenge. We propose a mechanism for fast and active control of the optical response of metallic nanostructures based on exploiting quantum effects in subnanometric plasmonic gaps. By applying an external dc bias across a narrow gap, a substantial change in the tunneling conductance across the junction can be induced at optical frequencies, which modifies the plasmonic resonances of the system in a reversible manner. We demonstrate the feasibility of the concept using time-dependent density functional theory calculations. Thus, along with two-dimensional structures, metal nanoparticle plasmonics can benefit from the reversibility, fast response time, and versatility of an active control strategy based on applied bias. The proposed electrical manipulation of light using quantum plasmonics establishes a new platform for many practical applications in optoelectronics.
机译:局部表面等离子体激元通过低于波长的尺寸的电子-光子耦合来挤压光和工程化纳米级电磁场的能力已将等离子体激元变成各种技术应用的驱动工具,其目标是新颖且更有效的光电工艺。在这种情况下,对等离激元激发的主动控制的发展是一个重大的基本和实际挑战。我们提出了一种机制,可以利用亚纳米等离激元间隙中的量子效应快速而主动地控制金属纳米结构的光学响应。通过在狭窄的间隙上施加外部直流偏置,可以在光频率处引起跨结的隧穿电导的实质性变化,从而以可逆的方式改变系统的等离子体共振。我们使用时变密度泛函理论计算证明了该概念的可行性。因此,连同二维结构,金属纳米粒子等离激元可受益于基于施加偏置的主动控制策略的可逆性,快速响应时间和多功能性。拟议的使用量子等离激元对光进行电操纵为光电子学中的许多实际应用建立了一个新的平台。

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