Numerical investigation of hybrid taper–grating coupling for broadband fiber-to-chip interfaces in silicon photonics

Abstract One of the most critical bottlenecks in photonic integrated circuit packaging in today’s scenario is efficient optical coupling between single-mode fibers (SMFs) and silicon-on-insulator (SOI) photonic chips. This is due to the severe mode-field diameter mismatch, which exceeds 20:1. This paper presents a simulation-based analysis of four fiber-to-chip coupling architectures on the 220 nm SOI platform: butt coupling, grating coupling, adiabatic taper coupling, and a proposed hybrid taper–grating design. All results are derived from full electromagnetic simulation using Lumerical FDTD Solutions v8.25 and RSoft BeamPROP 2023, without physical fabrication. The hybrid structure combines a 100 µm exponentially graded inverse taper with a 20-period apodized surface grating, optimized using a particle-swarm algorithm (40 particles, 150 iterations). Simulation predicts 97 % coupling efficiency, 0.35 dB insertion loss, 160 nm 3 dB bandwidth, and ±2.5 µm lateral misalignment tolerance improvements of approximately 35 % in efficiency and 100 nm in bandwidth relative to the standalone grating coupler baseline. Fabrication tolerance analysis over ±55 nm dimensional variation confirms predicted insertion loss penalties below 0.5 dB. Physical fabrication and experimental validation on the imec iSiPP50G platform are planned as the immediate next step.

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Publication Details

Journal
Journal of Optical Communications
Published
2026-10-07
DOI
https://doi.org/10.1515/joc-2026-0417
Primary Topic
Photonic and Optical Devices
Type
article
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article

Numerical investigation of hybrid taper–grating coupling for broadband fiber-to-chip interfaces in silicon photonics

Shilpa Gupta, Mehtab Singh
Journal of Optical Communications
Photonic and Optical Devices
article

Numerical investigation of hybrid taper–grating coupling for broadband fiber-to-chip interfaces in silicon photonics

Shilpa Gupta, Mehtab Singh
article en

Abstract

Abstract One of the most critical bottlenecks in photonic integrated circuit packaging in today’s scenario is efficient optical coupling between single-mode fibers (SMFs) and silicon-on-insulator (SOI) photonic chips. This is due to the severe mode-field diameter mismatch, which exceeds 20:1. This paper presents a simulation-based analysis of four fiber-to-chip coupling architectures on the 220 nm SOI platform: butt coupling, grating coupling, adiabatic taper coupling, and a proposed hybrid taper–grating design. All results are derived from full electromagnetic simulation using Lumerical FDTD Solutions v8.25 and RSoft BeamPROP 2023, without physical fabrication. The hybrid structure combines a 100 µm exponentially graded inverse taper with a 20-period apodized surface grating, optimized using a particle-swarm algorithm (40 particles, 150 iterations). Simulation predicts 97 % coupling efficiency, 0.35 dB insertion loss, 160 nm 3 dB bandwidth, and ±2.5 µm lateral misalignment tolerance improvements of approximately 35 % in efficiency and 100 nm in bandwidth relative to the standalone grating coupler baseline. Fabrication tolerance analysis over ±55 nm dimensional variation confirms predicted insertion loss penalties below 0.5 dB. Physical fabrication and experimental validation on the imec iSiPP50G platform are planned as the immediate next step.

Journal of Optical Communications
Chandigarh University (IN)
Openalex Percentile: Top 22%
Photonic and Optical Devices
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Numerical investigation of hybrid taper–grating coupling for broadband fiber-to-chip interfaces in silicon photonics — Shilpa Gupta, Mehtab Singh · Journal of Optical Communications (2026) | TGRS Research Map | TGRS