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Main Authors: Huang, Huiyu, Shi, Zhitian, Yao, Chunhui, Penty, Richard, Cheng, Qixiang
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2506.17825
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author Huang, Huiyu
Shi, Zhitian
Yao, Chunhui
Penty, Richard
Cheng, Qixiang
author_facet Huang, Huiyu
Shi, Zhitian
Yao, Chunhui
Penty, Richard
Cheng, Qixiang
contents We present a photonic coupler that exhibits effectively wavelength-agnostic performance for ultra-broadband optical interfacing. By incorporating a dual-ellipsoidal geometry, the design facilitates quasi-free-space optical propagation. We further propose a hybrid modelling workflow employs a matrix optics-based approach as an efficient pre-design tool, capturing critical geometry-to-mode mapping characteristics, significantly narrowing the parameter space required for subsequent full-vectorial finite-difference time-domain (FDTD) simulations. Our design achieves a 1 dB bandwidth exceeding 800 nm coupling from fibre to chip, with an insertion loss as low as 1.3 dB,to the best of our knowledge, a record for any reported photonic couplers. The additive manufacturing approach via 3D nano-printing enables flexible geometry customization and sub-micron integrated alignment features, facilitating seamless integration with photonic chips and optical fibers. Experimental validation demonstrates excellent stability and thermal robustness across diverse operational conditions, highlighting the design's suitability for integration into wide range of broadband photonic systems.
format Preprint
id arxiv_https___arxiv_org_abs_2506_17825
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Wavelength-agnostic 3D-Nanoprinted coupler
Huang, Huiyu
Shi, Zhitian
Yao, Chunhui
Penty, Richard
Cheng, Qixiang
Optics
We present a photonic coupler that exhibits effectively wavelength-agnostic performance for ultra-broadband optical interfacing. By incorporating a dual-ellipsoidal geometry, the design facilitates quasi-free-space optical propagation. We further propose a hybrid modelling workflow employs a matrix optics-based approach as an efficient pre-design tool, capturing critical geometry-to-mode mapping characteristics, significantly narrowing the parameter space required for subsequent full-vectorial finite-difference time-domain (FDTD) simulations. Our design achieves a 1 dB bandwidth exceeding 800 nm coupling from fibre to chip, with an insertion loss as low as 1.3 dB,to the best of our knowledge, a record for any reported photonic couplers. The additive manufacturing approach via 3D nano-printing enables flexible geometry customization and sub-micron integrated alignment features, facilitating seamless integration with photonic chips and optical fibers. Experimental validation demonstrates excellent stability and thermal robustness across diverse operational conditions, highlighting the design's suitability for integration into wide range of broadband photonic systems.
title Wavelength-agnostic 3D-Nanoprinted coupler
topic Optics
url https://arxiv.org/abs/2506.17825