使用厚度递增的低损耗相变材料Sb2Se3层的超紧凑可编程硅光子学

IF 6.7 1区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Sophie Blundell, Thomas W. Radford, Idris A. Ajia, Daniel Lawson, Xingzhao Yan, Mehdi Banakar, David J. Thomson, Ioannis Zeimpekis and Otto L. Muskens*, 
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引用次数: 0

摘要

高性能可编程硅光子电路被认为是下一代光学处理、光子量子电路和神经网络架构的关键部分。低损耗光学相变材料(PCMs)为实现光的非易失性自由形式控制提供了一条有前途的途径。在这里,我们利用厚度从20到100 nm的PCM Sb2Se3层利用波导的直接写入数字图形,证明了诱导光学相移随厚度的缩放,以及在较厚的层中显著增加每像素效果的能力。我们利用Sb2Se3和硅之间良好的折射率匹配来实现可编程光子学的低损耗混合平台。与20 nm薄膜Sb2Se3器件相比,随着厚度的增加,Mach-Zehnder干涉仪的调制长度减少了5倍,在本工作中减少到5 μm。在多模干涉仪的直接写入数字编程中应用较厚的PCM层,每个器件的编程象素数量相应减少了3倍,低于10个象素。Sb2Se3层厚度对性能的影响对于建立混合硅-Sb2Se3器件的最佳工作范围具有重要意义,并有望实现超紧凑、可编程的光子电路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultracompact Programmable Silicon Photonics Using Layers of Low-Loss Phase-Change Material Sb2Se3 of Increasing Thickness

High-performance programmable silicon photonic circuits are considered to be a critical part of next-generation architectures for optical processing, photonic quantum circuits, and neural networks. Low-loss optical phase-change materials (PCMs) offer a promising route toward nonvolatile free-form control of light. Here, we exploit the direct-write digital patterning of waveguides using layers of the PCM Sb2Se3 with thickness values from 20 to 100 nm, demonstrating the scaling of induced optical phase shift with thickness and the ability to strongly increase the effect per pixel for thicker layers. We exploit the excellent refractive index matching between Sb2Se3 and silicon to achieve a low-loss hybrid platform for programmable photonics. A 5-fold reduction in the modulation length of a Mach–Zehnder interferometer is achieved with increasing thickness compared to the 20 nm thin-film Sb2Se3 devices, which decreased to 5 μm in this work. Application of the thicker PCM layers in direct-write digital programming of a multimode interferometer shows a corresponding 3-fold reduction of the number of programmed pixels to below 10 pixels per device. The demonstrated scaling of performance with Sb2Se3 layer thickness is important for establishing the optimum working range for hybrid silicon-Sb2Se3 devices and holds promise for achieving ultracompact, programmable photonic circuits.

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来源期刊
ACS Photonics
ACS Photonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
11.90
自引率
5.70%
发文量
438
审稿时长
2.3 months
期刊介绍: Published as soon as accepted and summarized in monthly issues, ACS Photonics will publish Research Articles, Letters, Perspectives, and Reviews, to encompass the full scope of published research in this field.
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