Integration of Photonic Crystal Nanolasers with V-Shaped Nanoslots into Silicon Waveguides

Abstract This study demonstrates an end-coupling configuration that integrates a III–V slotted nanobeam (NB) laser into an air-clad silicon-on-insulator waveguide. This integration is realized by simultaneously assembling and wedging two identical NBs into a waveguide notch in a single step via a mechanically guided transfer-printing technique. The assembled NB features a novel nanoslot with a V-shaped cross-section and a minimum width of approximately 6 nm, enabling extreme field concentration at the slot opening─a characteristic highly beneficial for enhancing light–matter interaction with the surrounding media. By incorporating reduced lattice periods on the NBs and a multimode interference (MMI) coupler design on the silicon waveguide, a theoretical unidirectional coupling efficiency exceeding 80% is achieved for the V-slotted mode. Statistical analysis across multiple devices confirms uniformly high laser emission coupling into the silicon waveguides within the MMI coupling bandwidth. Furthermore, we investigate the impact of various transfer-printing misalignments on the coupling, confirming its robustness and uniformity within the achievable tolerances of our process. These findings provide a reliable approach to implementing slotted active devices in silicon-based photonic circuits, offering significant advantages for diverse applications requiring enhanced light–matter interactions.

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Publication Details

Journal
ACS Photonics
Published
2026-10-06
DOI
https://doi.org/10.1021/acsphotonics.6c01205
Primary Topic
Photonic and Optical Devices
Type
article
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article

Integration of Photonic Crystal Nanolasers with V-Shaped Nanoslots into Silicon Waveguides

Po-Tsung Lee, Tsan-Wen Lu, Chia-Ruei Yang, Hsi-Wen Huang et al.
ACS Photonics
Photonic and Optical Devices
article

Integration of Photonic Crystal Nanolasers with V-Shaped Nanoslots into Silicon Waveguides

Po-Tsung Lee, Tsan-Wen Lu, Chia-Ruei Yang, Hsi-Wen Huang, Chang-Chi Jung
article en

Abstract

Abstract This study demonstrates an end-coupling configuration that integrates a III–V slotted nanobeam (NB) laser into an air-clad silicon-on-insulator waveguide. This integration is realized by simultaneously assembling and wedging two identical NBs into a waveguide notch in a single step via a mechanically guided transfer-printing technique. The assembled NB features a novel nanoslot with a V-shaped cross-section and a minimum width of approximately 6 nm, enabling extreme field concentration at the slot opening─a characteristic highly beneficial for enhancing light–matter interaction with the surrounding media. By incorporating reduced lattice periods on the NBs and a multimode interference (MMI) coupler design on the silicon waveguide, a theoretical unidirectional coupling efficiency exceeding 80% is achieved for the V-slotted mode. Statistical analysis across multiple devices confirms uniformly high laser emission coupling into the silicon waveguides within the MMI coupling bandwidth. Furthermore, we investigate the impact of various transfer-printing misalignments on the coupling, confirming its robustness and uniformity within the achievable tolerances of our process. These findings provide a reliable approach to implementing slotted active devices in silicon-based photonic circuits, offering significant advantages for diverse applications requiring enhanced light–matter interactions.

ACS Photonics
National Yang Ming Chiao Tung University (TW)
Openalex Percentile: Top 22%
Photonic and Optical Devices
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