论文标题

从纳米焦点的多状态荧光的加速和绝热膨胀

Acceleration and adiabatic expansion of multi-state fluorescence from a nanofocus

论文作者

Güsken, Nicholas A., Fu, Ming, Zapf, Maximilian, Nielsen, Michael P., Dichtl, Paul, Röder, Robert, Clark, Alex S., Maier, Stefan A., Ronning, Carsten, Oulton, Rupert F

论文摘要

自75年前Purcell的开创性报告以来,电磁谐振器已被用来控制光线的相互作用,以使辐射源更明亮,并释放了对光和物质量子状态的前所未有的控制。实际上,小腔和等离子纳米结构等光学谐振器可提供出色的控制,但仅在有限的光谱范围内。通常需要调整排放和谐振器的策略,这排除了同时增强多个过渡的可能性。在这封信中,我们报告了使用单个非谐振等离子型波导的硅离子电信发射带的590倍以上的辐射发射带。我们的等离子波导使用一种新型的反向纳米焦点方法来有效收集发射,使这些设备比所有未考虑的非质子对照样品都更明亮。值得注意的是,高宽带percell因子使我们能够解析出鲜明的电偶极转变,通常仅在低温条件下观察到。对于光子量子网络以及片上数据通信,多种量子状态的同时增强概述是对光子量子的增强。

Since Purcell's seminal report 75 years ago, electromagnetic resonators have been used to control light-matter interactions to make brighter radiation sources and unleash unprecedented control over quantum states of light and matter. Indeed, optical resonators such as microcavities and plasmonic nanostructures offer excellent control but only over a limited spectral range. Strategies to tune both emission and the resonator are often required, which preclude the possibility of enhancing multiple transitions simultaneously. In this letter, we report a more than 590-fold radiative emission enhancement across the telecommunications emission band of Erbium-ions in silica using a single non-resonant plasmonic waveguide. Our plasmonic waveguide uses a novel reverse nanofocusing approach to efficiently collect emission, making these devices brighter than all non-plasmonic control samples considered. Remarkably, the high broadband Purcell factor allows us to resolve the Stark-split electric dipole transitions, which are typically only observed under cryogenic conditions. Simultaneous Purcell enhancement of multiple quantum states is of interest for photonic quantum networks as well as on-chip data communications.

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