Microheater hotspot engineering for repeatable multi-level switching in foundry-processed phase change silicon photonics

Fuente: arXiv
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Main Authors: Sun, Hongyi, Lian, Chuanyu, Vásquez-Aza, Francis, Kari, Sadra Rahimi, Huang, Yi-Siou, Restelli, Alessandro, Vitale, Steven A., Takeuchi, Ichiro, Hu, Juejun, Youngblood, Nathan, Pavlidis, Georges, Ocampo, Carlos A. Ríos
Format: Preprint
Published: 2024
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author Sun, Hongyi
Lian, Chuanyu
Vásquez-Aza, Francis
Kari, Sadra Rahimi
Huang, Yi-Siou
Restelli, Alessandro
Vitale, Steven A.
Takeuchi, Ichiro
Hu, Juejun
Youngblood, Nathan
Pavlidis, Georges
Ocampo, Carlos A. Ríos
author_facet Sun, Hongyi
Lian, Chuanyu
Vásquez-Aza, Francis
Kari, Sadra Rahimi
Huang, Yi-Siou
Restelli, Alessandro
Vitale, Steven A.
Takeuchi, Ichiro
Hu, Juejun
Youngblood, Nathan
Pavlidis, Georges
Ocampo, Carlos A. Ríos
contents Nonvolatile photonic integrated circuits employing phase change materials have relied either on optical switching mechanisms with precise multi-level control but poor scalability or electrical switching with seamless integration and scalability but mostly limited to a binary response. Recent works have demonstrated electrical multi-level switching; however, they relied on the stochastic nucleation process to achieve partial crystallization with low demonstrated repeatability and cyclability. Here, we re-engineer waveguide-integrated microheaters to achieve precise spatial control of the temperature profile (i.e., hotspot) and, thus, switch deterministic areas of an embedded phase change material cell. We experimentally demonstrate this concept using a variety of foundry-processed doped-silicon microheaters on a silicon-on-insulator platform to trigger multi-step amorphization and reversible switching of Sb$_{2}$Se$_{3}$ and Ge$_{2}$Sb$_{2}$Se$_{4}$Te alloys. We further characterize the response of our microheaters using Transient Thermoreflectance Imaging. Our approach combines the deterministic control resulting from a spatially resolved glassy-crystalline distribution with the scalability of electro-thermal switching devices, thus paving the way to reliable multi-level switching towards robust reprogrammable phase-change photonic devices for analog processing and computing.
format Preprint
id arxiv_https___arxiv_org_abs_2407_00059
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Microheater hotspot engineering for repeatable multi-level switching in foundry-processed phase change silicon photonics
Sun, Hongyi
Lian, Chuanyu
Vásquez-Aza, Francis
Kari, Sadra Rahimi
Huang, Yi-Siou
Restelli, Alessandro
Vitale, Steven A.
Takeuchi, Ichiro
Hu, Juejun
Youngblood, Nathan
Pavlidis, Georges
Ocampo, Carlos A. Ríos
Applied Physics
Materials Science
Optics
Nonvolatile photonic integrated circuits employing phase change materials have relied either on optical switching mechanisms with precise multi-level control but poor scalability or electrical switching with seamless integration and scalability but mostly limited to a binary response. Recent works have demonstrated electrical multi-level switching; however, they relied on the stochastic nucleation process to achieve partial crystallization with low demonstrated repeatability and cyclability. Here, we re-engineer waveguide-integrated microheaters to achieve precise spatial control of the temperature profile (i.e., hotspot) and, thus, switch deterministic areas of an embedded phase change material cell. We experimentally demonstrate this concept using a variety of foundry-processed doped-silicon microheaters on a silicon-on-insulator platform to trigger multi-step amorphization and reversible switching of Sb$_{2}$Se$_{3}$ and Ge$_{2}$Sb$_{2}$Se$_{4}$Te alloys. We further characterize the response of our microheaters using Transient Thermoreflectance Imaging. Our approach combines the deterministic control resulting from a spatially resolved glassy-crystalline distribution with the scalability of electro-thermal switching devices, thus paving the way to reliable multi-level switching towards robust reprogrammable phase-change photonic devices for analog processing and computing.
title Microheater hotspot engineering for repeatable multi-level switching in foundry-processed phase change silicon photonics
topic Applied Physics
Materials Science
Optics
url https://arxiv.org/abs/2407.00059