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Nonvolatile programmable silicon photonics using an ultralow-loss Sb 2 Se 3 phase change material
Author(s) -
Matthew Delaney,
Ioannis Zeimpekis,
Han Du,
Xingzhao Yan,
Mehdi Banakar,
David J. Thomson,
Daniel W. Hewak,
Otto L. Muskens
Publication year - 2021
Publication title -
science advances
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.abg3500
Subject(s) - photonics , silicon photonics , interferometry , control reconfiguration , nanophotonics , silicon , materials science , optoelectronics , refractive index , computer science , optics , embedded system , physics
The next generation of silicon-based photonic processors and neural and quantum networks need to be adaptable, reconfigurable, and programmable. Phase change technology offers proven nonvolatile electronic programmability; however, the materials used to date have shown prohibitively high optical losses, which are incompatible with integrated photonic platforms. Here, we demonstrate the capability of the previously unexplored material Sb 2 Se 3 for ultralow-loss programmable silicon photonics. The favorable combination of large refractive index contrast and ultralow losses seen in Sb 2 Se 3 facilitates an unprecedented optical phase control exceeding 10π radians in a Mach-Zehnder interferometer. To demonstrate full control over the flow of light, we introduce nanophotonic digital patterning as a previously unexplored conceptual approach with a footprint orders of magnitude smaller than state-of-the-art interferometer meshes. Our approach enables a wealth of possibilities in high-density reconfiguration of optical functionalities on silicon chip.

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