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Optical Amplification In Nanocrystalline Silicon Superlattices

机译:纳米晶硅超晶格中的光学放大

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Today, the overall performance of a multi-chip computing system is limited by the interconnection delay between chips. Conventional interconnects based on metal lines are expected to cause unmanageable problems with speed and power dissipation. Optical interconnects provide a solution to these problems. However, the low quantum efficiency associated with radiative recombination in silicon has so far prevented the demonstration of a practical laser. Recently stimulated emission has been demonstrated in Si nanocrystals prepared by ion-implantation. The reported material gain is high enough to realize a practical Si based laser. However, the optical filling factor in these samples was less than 10% due to the poor wave guiding nature of these structures. In this work, we explore a possible way to achieve optical gain in nanocrystalline silicon superlattices. The samples are produced by growing alternating layers of amorphous silicon and Si02 and then using a two step crystallization method to transform each amorphous silicon layer into a high density array of silicon nanocrystals having identical size. The waveguide structure is formed by sandwiching the superlattice between cladding layers. To measure optical gain we use the variable stripe length method where the amplified spontaneous emission emitted from the edge is measured as a function of the excitation length. Tuning from loss to gain was observed by just varying the pump power.
机译:如今,多芯片计算系统的整体性能受到芯片之间互连延迟的限制。预期基于金属线的常规互连会在速度和功耗方面引起难以控制的问题。光学互连为这些问题提供了解决方案。然而,迄今为止,与硅中的辐射复合相关的低量子效率阻止了实际激光器的演示。在通过离子注入制备的Si纳米晶体中已经证明了最近受激发射。报告的材料增益足够高,可以实现实用的基于Si的激光器。然而,由于这些结构的差的波导性质,这些样品中的光学填充率小于10%。在这项工作中,我们探索了一种在纳米晶硅超晶格中实现光学增益的可能方法。通过生长非晶硅和SiO 2的交替层,然后使用两步结晶方法将每个非晶硅层转变成具有相同尺寸的硅纳米晶体的高密度阵列来生产样品。通过将超晶格夹在包层之间来形成波导结构。为了测量光学增益,我们使用可变条带长度方法,其中测量从边缘发出的放大的自发发射与激发长度的关系。仅通过改变泵浦功率就可以观察到从损耗到增益的调整。

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