论文标题

优化异质整合的INP-SI片上光子成分

Optimization of heterogeneously integrated InP-Si on-chip photonic components

论文作者

Mrowiński, P., Holewa, P., Sakanas, A., Sęk, G., Semenova, E., Syperek, M.

论文摘要

我们展示了有关基于混合III-V/Si的波导系统的全面数值研究,它是一个平台,用于在硅基材料材料上定义的芯片上量子光子集成电路之间有效的光耦合到芯片量子量子光子集成电路。我们提出了一个由混合INP/SI波导和INP填充的INAS量子点组成的平台,在1550 nm附近的电信C波段发射。可以使用现有的半导体处理技术制造该平台。我们的数值研究表明,在几何优化的INP/Si和Si波导之间,将近86%的光场传递效率考虑了沿锥形几何形状的传​​播场模式。评估偶极子/Si波导的偶极子的偶联效率被评估为〜60%,这导致了从偶极子从偶极子到Si波导的总芯片光学场转移效率的50%以上。我们还考虑通过检查芯片平面的态度和平式耦合构型,考虑沿Si波导的芯片外耦合效率。在前一种情况下,使用圆形bragg Gragg Gragting Out Coupler Design时,外耦合约为26%。在后一种情况下,效率最多可达到10%。最后,我们得出的结论是,概念装置的性能非常容易受到转移的光子波长的影响,从而在1.5-1.6μm光谱范围内提供了宽带操作。

We demonstrate comprehensive numerical studies on a hybrid III-V/Si-based waveguide system, serving as a platform for efficient light coupling between an integrated III-V quantum dot emitter to an on-chip quantum photonic integrated circuit defined on a silicon substrate. We propose a platform consisting of a hybrid InP/Si waveguide and an InP-embedded InAs quantum dot, emitting at the telecom C-band near 1550 nm. The platform can be fabricated using the existing semiconductor processing technologies. Our numerical studies reveal nearly 86% of the optical field transfer efficiency between geometrically-optimized InP/Si and Si waveguides, considering propagating field modes along a tapered geometry. The coupling efficiency of a dipole emitting to the hybrid InP/Si waveguide is evaluated to ~60%, which results in more than 50% of the total on-chip optical field transfer efficiency from the dipole to the Si waveguide. We also consider the off-chip outcoupling efficiency of the propagating photon field along the Si waveguide by examining the normal to the chip plane and in-plain outcoupling configurations. In the former case, the outcoupling amounts to ~26% when using the circular Bragg grating outcoupler design. In the latter case, the efficiency reaches up to 10%. Finally, we conclude that the conceptual device's performance is weakly susceptible to the transferred photon wavelength, offering a broadband operation within the 1.5-1.6 μm spectral range.

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