论文标题

光学通信的纳米菌和纳光器的物理极限

The physical limits of nanoLEDs and nanolasers for optical communications

论文作者

Romeira, Bruno, Fiore, Andrea

论文摘要

纳米级的光源正在经过深入研究,因为它们的潜力可以使低能,高密度的光学通信和传感系统。基于高级纳米光子概念(例如光子晶体和等离子结构),纳米光发射二极管(纳米二极管)和纳米震体都被考虑,尺寸很好地进入了亚微米域。随着尺寸的降低,在自发和刺激的方向上,光 - 物质相互作用变得更强,可能导致有效和超快的辐射发射。这些功能对这种纳米级光源的实际前景产生了广泛的期望,特别是对于光学互连。在本文中,我们研究了LED和激光器降低缩放的限制,并问自己哪种类型的来源最适合超功率光学通信。基于对室温下半导体活动区域自发和刺激排放率的简单物理考虑,我们分析了纳米和纳米剂的速度和能量限制,这是其大小的函数。还重新审视了自发发射增强(Purcell效应)在实用纳米光源中的作用。主要的结论是,纳米菌达到了超过几个GB/s的数据速率的基本能量/速度限制,而在几个100s nm范围内具有主动尺寸的纳米板可能会在功率水平上大于40 GB/s的直接调制速率,足以适用于短路和低端的光学互连。

Nanoscale light sources are being intensively investigated for their potential to enable low-energy, high-density optical communication and sensing systems. Both nano-light-emitting diodes (nanoLEDs) and nanolasers have been considered, based on advanced nanophotonic concepts such as photonic crystals and plasmonic structures, with dimensions well into the sub-micrometer domain. With decreasing dimensions, light-matter interaction becomes stronger, potentially leading to efficient and ultrafast radiative emission, both in the spontaneous and stimulated regime. These features have created wide expectations for the practical prospects of such nanoscale light sources, in particular for optical interconnects. In this article we examine the limits to the downscaling of LEDs and lasers, and ask ourselves which type of source is most suited to ultralow-power optical communications. Based on simple physical considerations on the scaling of spontaneous and stimulated emission rates for semiconductor active regions at room temperature, we analyze the speed and energy limits for nanoLEDs and nanolasers as a function of their size. The role of spontaneous emission enhancement (Purcell effect) in practical nanophotonic sources is also revisited. The main conclusion is that nanoLEDs reach a fundamental energy/speed limit for data rates exceeding a few Gb/s, whereas nanolasers with active dimensions in the range of few 100s nm may enable direct modulation rates larger than 40 Gb/s at power levels adequate for short-distance and low-energy optical interconnects.

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