Compact thermo-optic switch based on graphene-silicon nitride nanobeam cavity

We propose and experimentally demonstrate a compact optical switch based on a one-dimensional (1D) silicon nitride (Si 3 N 4 ) photonic crystal nanobeam cavity (PCNC) integrated with a graphene microheater. The PCNC exhibits a small optical mode volume of approximately 3.2 μm 3 , which enhances light-matter interaction and improves thermo-optic (TO) tuning efficiency. Graphene is positioned at the center of the cavity, and heat generation is induced by applying a bias voltage across it. The refractive index of the underlying PCNC is then changed due to the TO effect, thereby enabling resonance wavelength tuning. Additionally, fast thermal response is achieved owing to the high thermal conductivity of graphene. Measurements show a TO tuning efficiency of 0.21 nm/mW and an extinction ratio (ER) of 7 dB at an applied heating power of 5.2 mW. The thermal rise and fall time constants are 4.55 μs and 1.55 μs, respectively. This work achieves a microsecond-level Si 3 N 4 -based optical switch with a compact device footprint, offering a promising solution for high-density on-chip optical interconnects and routing systems.

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Publication Details

Journal
Optics Express
Published
2026-10-05
DOI
https://doi.org/10.1364/oe.614440
Primary Topic
Photonic and Optical Devices
Type
article
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Compact thermo-optic switch based on graphene-silicon nitride nanobeam cavity

Huaixu Chen, Ciyuan Qiu, Minghua Chen, Jingming Chan et al.
Optics Express
Photonic and Optical Devices
article

Compact thermo-optic switch based on graphene-silicon nitride nanobeam cavity

Huaixu Chen, Ciyuan Qiu, Minghua Chen, Jingming Chan, Wen‐Di Li, Yunjie Li
article en

Abstract

We propose and experimentally demonstrate a compact optical switch based on a one-dimensional (1D) silicon nitride (Si 3 N 4 ) photonic crystal nanobeam cavity (PCNC) integrated with a graphene microheater. The PCNC exhibits a small optical mode volume of approximately 3.2 μm 3 , which enhances light-matter interaction and improves thermo-optic (TO) tuning efficiency. Graphene is positioned at the center of the cavity, and heat generation is induced by applying a bias voltage across it. The refractive index of the underlying PCNC is then changed due to the TO effect, thereby enabling resonance wavelength tuning. Additionally, fast thermal response is achieved owing to the high thermal conductivity of graphene. Measurements show a TO tuning efficiency of 0.21 nm/mW and an extinction ratio (ER) of 7 dB at an applied heating power of 5.2 mW. The thermal rise and fall time constants are 4.55 μs and 1.55 μs, respectively. This work achieves a microsecond-level Si 3 N 4 -based optical switch with a compact device footprint, offering a promising solution for high-density on-chip optical interconnects and routing systems.

Optics ExpressVol. 34(21)
University of Hong Kong (HK), Tsinghua University (CN)
Openalex Percentile: Top 22%
Photonic and Optical Devices
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