Nature Commun. 16, 4291 (2025)https://ireap.umd.edu/10.1038/s41467-025-59399-62025
Hongyi Sun Chuanyu Lian Francis Vaquez-Aza Sadra Rahimi Kari Yi-Siou Huang Alessandro Restelli Steven A. Vitale Ichiro Takeuchi Juejun Hu Nathan Youngblood Georges Pavlidis Carlos A. Rios Ocampo
Journal ArticleNonlinear and Quantum Photonics

Nonvolatile photonic integrated circuits employing phase change materials have relied either on optical switching with precise multi-level control but poor scalability or electrical switching with seamless integration and scalability but mostly limited to a binary response. The main limitation of the latter is relying on stochastic nucleation, since its random nature hinders the repeatability of multi-level states. Here, we show engineered 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. We experimentally demonstrate this concept using a variety of foundry-processed doped-silicon microheaters on a silicon-on-insulator platform featuring Sb2Se3 or Ge2Sb2Se4Te and achieve 27 cycles with 7 repeatable levels each. We further characterize the microheaters’ response using Transient Thermoreflectance Imaging. Our microstructure engineering concept demonstrates the evasive repeatable multi-levels employing a single microheater device, which is necessary for robust and energy-efficient reprogrammable phase change photonics in analog processing and computing.


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