Mirror Surface Evaluation for the Einstein Telescope Using Virtual Mirror Maps

Fuente: arXiv
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Main Authors: Bianchi, A., Green, A. C., Degallaix, J., Feldmann, F. A., Soflau, A., Freise, A.
Format: Preprint
Published: 2026
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author Bianchi, A.
Green, A. C.
Degallaix, J.
Feldmann, F. A.
Soflau, A.
Freise, A.
author_facet Bianchi, A.
Green, A. C.
Degallaix, J.
Feldmann, F. A.
Soflau, A.
Freise, A.
contents The performance of mirrors in optical interferometers is critically influenced by their surface quality. Accurate metrology enables mirror surfaces to be characterized through phase maps describing their three-dimensional structure after coating. In this work, we combine Zernike polynomial decomposition and spatial frequency (PSD) analysis with numerical optical simulations to quantify the impact of surface distortions on the reflected optical field. The method is validated using metrology data from mirrors currently installed in the Advanced Virgo gravitational-wave detector. Building on this validation, we introduce a framework for generating realistic virtual mirror maps that reproduce both low order aberrations and high spatial frequency content of measured surfaces. These virtual maps are used in optical simulations to systematically explore and compare candidate surface quality specifications for future detectors, with particular focus on the Einstein Telescope. Our results show that metrology-informed virtual mirrors provide a practical design tool to assess the impact of different surface specifications on optical performance, and to relate future requirements to the performance of existing interferometers.
format Preprint
id arxiv_https___arxiv_org_abs_2604_14008
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Mirror Surface Evaluation for the Einstein Telescope Using Virtual Mirror Maps
Bianchi, A.
Green, A. C.
Degallaix, J.
Feldmann, F. A.
Soflau, A.
Freise, A.
Optics
General Relativity and Quantum Cosmology
Instrumentation and Detectors
The performance of mirrors in optical interferometers is critically influenced by their surface quality. Accurate metrology enables mirror surfaces to be characterized through phase maps describing their three-dimensional structure after coating. In this work, we combine Zernike polynomial decomposition and spatial frequency (PSD) analysis with numerical optical simulations to quantify the impact of surface distortions on the reflected optical field. The method is validated using metrology data from mirrors currently installed in the Advanced Virgo gravitational-wave detector. Building on this validation, we introduce a framework for generating realistic virtual mirror maps that reproduce both low order aberrations and high spatial frequency content of measured surfaces. These virtual maps are used in optical simulations to systematically explore and compare candidate surface quality specifications for future detectors, with particular focus on the Einstein Telescope. Our results show that metrology-informed virtual mirrors provide a practical design tool to assess the impact of different surface specifications on optical performance, and to relate future requirements to the performance of existing interferometers.
title Mirror Surface Evaluation for the Einstein Telescope Using Virtual Mirror Maps
topic Optics
General Relativity and Quantum Cosmology
Instrumentation and Detectors
url https://arxiv.org/abs/2604.14008