论文标题
SI-GST混合整合波导和MMI设备中相变过程的比较
Comparison of phase change process in Si-GST hybrid integrated waveguide and MMI devices
论文作者
论文摘要
在过去的几十年中,硅光子综合电路(图片)被认为是在光学通信和互连中解决带宽瓶颈的有前途方法。尽管取得了重大进展,但大型图片仍然面临着一系列技术挑战,例如足迹,功耗和路由状态存储,这是由于用于控制光波的主动调整方法所致。这些挑战可以通过结合硫代基相变材料(PCM)(例如GE2SB2TE5(GST))与硅光子学结合,尤其适用于由于GST的非易失性性质而适用于切换应用,可以部分解决这些挑战。尽管已经在实验中证明了由光学和电脉冲加热引起的无定形和晶状状态之间的GST相变,但它们之间没有直接的比较。我们进行了模拟和实验,以系统地研究两种类型的SI-GST杂交波导引起的光学和电脉冲引起的相变过程的差异。对于由光脉冲引起的相变,该设备在功耗和操作速度方面具有明显的优势。对于由电脉冲引起的相变,该设备适用于大规模整合,因为它不需要复杂的光路由。它可以帮助我们更好地了解相变过程,并推动SI-GST混合集成平台的进一步开发,从而带来新的潜在应用。
In the past decades, silicon photonic integrated circuits (PICs) have been considered as a promising approach to solve the bandwidth bottleneck in optical communications and interconnections. Despite significant advances, large-scale PICs still face a series of technical challenges, such as footprint, power consumption, and routing state storage, resulting from the active tuning methods used to control the optical waves. These challenges can be partially addressed by combining chalcogenide phase change materials (PCMs) such as Ge2Sb2Te5 (GST) with silicon photonics, especially applicable in switching applications due to the nonvolatile nature of the GST. Although GST phase transitions between amorphous and crystalline states actuated by optical and electrical pulses heating have been experimentally demonstrated, there is no direct comparison between them. We carried out simulations and experiments to systematically investigate the difference in the phase change process induced by optical and electrical pulses for two types of Si-GST hybrid waveguides. For the phase transition induced by optical pulses, the device has a clear advantage in terms of power consumption and operation speed. For the phase transition induced by electrical pulses, the device is suitable for large-scale integration because it does not require complex light routing. It helps us better understand the phase change process and push forward the further development of Si-GST hybrid integration platform, bringing in new potential applications.