English

Efficient second harmonic generation in nanophotonic GaAs-on-insulator waveguides

Optics 2020-04-22 v3 Applied Physics

Abstract

Nonlinear frequency conversion plays a crucial role in advancing the functionality of next-generation optical systems. Portable metrology references and quantum networks will demand highly efficient second-order nonlinear devices, and the intense nonlinear interactions of nanophotonic waveguides can be leveraged to meet these requirements. Here we demonstrate second harmonic generation (SHG) in GaAs-on-insulator waveguides with unprecedented efficiency of 40 W1^{-1} for a single-pass device. This result is achieved by minimizing the propagation loss and optimizing phase-matching. We investigate surface-state absorption and design the waveguide geometry for modal phase-matching with tolerance to fabrication variation. A 2.0 μ\mum pump is converted to a 1.0 μ\mum signal in a length of 2.9 mm with a wide signal bandwidth of 148 GHz. Tunable and efficient operation is demonstrated over a temperature range of 45 ^{\circ}C with a slope of 0.24 nm/^{\circ}C. Wafer-bonding between GaAs and SiO2_2 is optimized to minimize waveguide loss, and the devices are fabricated on 76 mm wafers with high uniformity. We expect this device to enable fully integrated self-referenced frequency combs and high-rate entangled photon pair generation.

Keywords

Cite

@article{arxiv.1912.12346,
  title  = {Efficient second harmonic generation in nanophotonic GaAs-on-insulator waveguides},
  author = {Eric J. Stanton and Jeff Chiles and Nima Nader and Galan Moody and Nicolas Volet and Lin Chang and John E. Bowers and Sae Woo Nam and Richard P. Mirin},
  journal= {arXiv preprint arXiv:1912.12346},
  year   = {2020}
}

Comments

7 pages, 7 figures

R2 v1 2026-06-23T12:57:48.127Z