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Dynamic control of light emission faster than the lifetime limit using VO2 phase-change

机译:利用VO 2 相变实现动态控制快于寿命极限的发光

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Modulation is a cornerstone of optical communication, and as such, governs the overall speed of data transmission. Currently, the two main strategies for modulating light are direct modulation of the excited emitter population (for example, using semiconductor lasers) and external optical modulation (for example, using Mach–Zehnder interferometers or ring resonators). However, recent advances in nanophotonics offer an alternative approach to control spontaneous emission through modifications to the local density of optical states. Here, by leveraging the phase-change of a vanadium dioxide nanolayer, we demonstrate broadband all-optical direct modulation of 1.5?μm emission from trivalent erbium ions more than three orders of magnitude faster than their excited state lifetime. This proof-of-concept demonstration shows how integration with phase-change materials can transform widespread phosphorescent materials into high-speed optical sources that can be integrated in monolithic nanoscale devices for both free-space and on-chip communication.
机译:调制是光通信的基石,因此,它控制着数据传输的整体速度。当前,调制光的两种主要策略是对激发的发射体进行直接调制(例如,使用半导体激光器)和外部光调制(例如,使用Mach–Zehnder干涉仪或环形谐振器)。但是,纳米光子学的最新进展提供了一种通过修改光学状态的局部密度来控制自发发射的替代方法。在这里,通过利用二氧化钒纳米层的相变,我们证明了宽带全光直接调制从三价离子发出的1.5?μm发射光要比其激发态寿命快三个数量级。这个概念验证的演示显示了与相变材料的集成如何将广泛的磷光材料转换为高速光源,可以将其集成到单片纳米级设备中以进行自由空间和片上通信。

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