Profile control of fibre-based micro-mirrors using adaptive laser shooting with $\textit{in situ}$ imaging

Fuente: arXiv
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Autori principali: Gao, Shaobo, Kavungal, Vishnu, Oya, Shuma, Okuno, Daichi, Kassa, Ezra, Hughes, William J., Horak, Peter, Takahashi, Hiroki
Natura: Preprint
Pubblicazione: 2025
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author Gao, Shaobo
Kavungal, Vishnu
Oya, Shuma
Okuno, Daichi
Kassa, Ezra
Hughes, William J.
Horak, Peter
Takahashi, Hiroki
author_facet Gao, Shaobo
Kavungal, Vishnu
Oya, Shuma
Okuno, Daichi
Kassa, Ezra
Hughes, William J.
Horak, Peter
Takahashi, Hiroki
contents Fibre Fabry-Perot cavities (FFPCs) are used in various studies in cavity quantum electrodynamics (CQED) and quantum technologies due to the cavity's small mode volume and compact integration with optical fibres. We develop a novel $\text{CO}_2$ laser machining method that produces well-controlled surface profiles on the end facets of cleaved optical fibres. Using multiple shots in distinct spatial distribution patterns, our method employs a shooting algorithm that adaptively changes laser ablation parameters during the shooting to suppress deviations from the desired profile. This is made possible by $\textit{in situ}$ imaging of the machined profile, its inspection and the usage of the information in the subsequent steps. Underlying this algorithm is a newly found laser ablation parameter, the pause between shots, which controls the accumulation of heat in between successive laser shots and as a result determines the area of impact made by an individual ablation sequence. We fabricate fibre-based micro-mirrors with radii of curvature ranging from 250 $μ$m to 700 $μ$m with an effective mirror diameter of 60 $μ$m in either Gaussian or spherical profiles. Due to the self-correcting nature of our adaptive algorithm, we achieve a near 100\% success rate in the production of desired profiles with low ellipticity. After furnishing the laser machined fibre end facets with high reflectivity coating, FFPCs are formed to demonstrate a high finesse up to 150,000 at an optical wavelength of 854 nm.
format Preprint
id arxiv_https___arxiv_org_abs_2504_11824
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Profile control of fibre-based micro-mirrors using adaptive laser shooting with $\textit{in situ}$ imaging
Gao, Shaobo
Kavungal, Vishnu
Oya, Shuma
Okuno, Daichi
Kassa, Ezra
Hughes, William J.
Horak, Peter
Takahashi, Hiroki
Optics
Quantum Physics
Fibre Fabry-Perot cavities (FFPCs) are used in various studies in cavity quantum electrodynamics (CQED) and quantum technologies due to the cavity's small mode volume and compact integration with optical fibres. We develop a novel $\text{CO}_2$ laser machining method that produces well-controlled surface profiles on the end facets of cleaved optical fibres. Using multiple shots in distinct spatial distribution patterns, our method employs a shooting algorithm that adaptively changes laser ablation parameters during the shooting to suppress deviations from the desired profile. This is made possible by $\textit{in situ}$ imaging of the machined profile, its inspection and the usage of the information in the subsequent steps. Underlying this algorithm is a newly found laser ablation parameter, the pause between shots, which controls the accumulation of heat in between successive laser shots and as a result determines the area of impact made by an individual ablation sequence. We fabricate fibre-based micro-mirrors with radii of curvature ranging from 250 $μ$m to 700 $μ$m with an effective mirror diameter of 60 $μ$m in either Gaussian or spherical profiles. Due to the self-correcting nature of our adaptive algorithm, we achieve a near 100\% success rate in the production of desired profiles with low ellipticity. After furnishing the laser machined fibre end facets with high reflectivity coating, FFPCs are formed to demonstrate a high finesse up to 150,000 at an optical wavelength of 854 nm.
title Profile control of fibre-based micro-mirrors using adaptive laser shooting with $\textit{in situ}$ imaging
topic Optics
Quantum Physics
url https://arxiv.org/abs/2504.11824