High-Efficiency Metamaterial-Engineered Grating Couplers for Silicon Nitride Photonics

Author:

Fraser William12,Korček Radovan3,Glesk Ivan3ORCID,Litvik Jan3,Schmid Jens H.2,Cheben Pavel2,Ye Winnie N.1ORCID,Benedikovic Daniel3ORCID

Affiliation:

1. Silicon Micro/NanoPhotonics Group, Carleton University, Ottawa, ON K1S 5B6, Canada

2. National Research Council Canada, Ottawa, ON K1A 0R6, Canada

3. Department Multimedia and Information-Communication Technology, University of Zilina, 010 26 Žilina, Slovakia

Abstract

Silicon nitride (Si3N4) is an ideal candidate for the development of low-loss photonic integrated circuits. However, efficient light coupling between standard optical fibers and Si3N4 chips remains a significant challenge. For vertical grating couplers, the lower index contrast yields a weak grating strength, which translates to long diffractive structures, limiting the coupling performance. In response to the rise of hybrid photonic platforms, the adoption of multi-layer grating arrangements has emerged as a promising strategy to enhance the performance of Si3N4 couplers. In this work, we present the design of high-efficiency surface grating couplers for the Si3N4 platform with an amorphous silicon (α-Si) overlay. The surface grating, fully formed in an α-Si waveguide layer, utilizes subwavelength grating (SWG)-engineered metamaterials, enabling simple realization through single-step patterning. This not only provides an extra degree of freedom for controlling the fiber–chip coupling but also facilitates portability to existing foundry fabrication processes. Using rigorous three-dimensional (3D) finite-difference time-domain (FDTD) simulations, a metamaterial-engineered grating coupler is designed with a coupling efficiency of −1.7 dB at an operating wavelength of 1.31 µm, with a 1 dB bandwidth of 31 nm. Our proposed design presents a novel approach to developing high-efficiency fiber–chip interfaces for the silicon nitride integration platform for a wide range of applications, including datacom and quantum photonics.

Funder

Slovak Research and Development Agency

Slovak Grant Agency

National Research Council Canada

Natural Sciences and Engineering Research Council of Canada

Publisher

MDPI AG

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