paper

A comparison of phase change materials in reconfigurable silicon photonic directional couplers

arXiv:2106.01169

Abstract

The unique optical properties of phase change materials (PCMs) can be exploited to develop efficient reconfigurable photonic devices. Here, we design, model, and compare the performance of programmable 1X2 optical couplers based on: GeSbTe, GeSbSeTe, SbSe, and SbS PCMs. Once programmed, these devices are passive, which can reduce the overall energy consumed compared to thermo-optic or electro-optic reconfigurable devices. Of all the PCMs studied, our ellipsometry refractive index measurements show that SbS has the lowest absorption in the telecommunications wavelength band. Moreover, SbS-based couplers show the best overall performance, with the lowest insertion losses in both the amorphous and crystalline states. We show that by growth crystallization tuning at least four different coupling ratios can be reliably programmed into the SbS directional couplers. We used this effect to design a 2-bit tuneable SbS directional coupler with a dynamic range close to 32 dB. The bit-depth of the coupler appears to be limited by the crystallization stochasticity.

We have added/ changed: (a) the title of this work (b) new SbSe and SbS ellipsometry measurements to strengthen our arguments in this work. The n and k values for SbSe was previously cited from literature. (c) fixed the PCM waveguide and PCM dimensions to ensure fair comparison across the four directional coupler performance