论文标题

重力波探测器镜的三分之一季度波长涂层:通过详尽搜索设计优化

Ternary Quarter Wavelength Coatings for Gravitational Wave Detector Mirrors: Design Optimization via Exhaustive Search

论文作者

Pierro, V., Fiumara, V., Chiadini, F., Granata, V., Di Giorgio, C., Durante, O., Neilson, J., Fittipaldi, R., Carapella, G., Bobba, F., Principe, M., Pinto, I. M.

论文摘要

多层光学涂层是下一代重力波检测器镜子的挑战性要求(就透射率,吸光度和热噪声而言)的有前途的可行选择。在本文中,我们着重于由四分之一波长厚的层组成的三元涂层,其中将第三种材料(H')添加到目前正在使用的两种材料中,即二氧化硅(L)和二氧化钛掺杂的Tantala(H),具有较高的介电对比度(相对于硅),与较高的热噪声(相比,较高的Titania tatania-oped Tantantala),但较高的tantanala损失。我们寻求最佳的材料序列,这些序列在规定的透射率和吸光度约束下具有最小的热(布朗)噪声,通过对所有可能的配置进行详尽的模拟,对于第三材料的光密度和灭绝系数的不同值(在有意义的范围内)。在所有研究的情况下,最佳设计由一堆(H'| L)双重组组成,上面是一堆(H | l)双重组,确认了先前的启发式假设,并且可实现的涂层涂层噪声功率频谱密度还原因子为\ sim 0.5。还研究了第三材料的光损耗中发现的最佳设计对层厚度沉积误差以及不确定性和/或波动的鲁棒性。讨论了通过层厚度优化进一步减少热噪声的可能性,并讨论了实施它的策略。

Multimaterial optical coatings are a promising viable option to meet the challenging requirements (in terms of transmittance, absorbance and thermal noise) of next generation gravitational wave detector mirrors. In this paper we focus on ternary coatings consisting of quarter-wavelength thick layers, where a third material (H') is added to the two presently in use, namely Silica (L) and Titania-doped Tantala (H), featuring higher dielectric contrast (against Silica), and lower thermal noise (compared to Titania-doped Tantala), but higher optical losses. We seek the optimal material sequences, featuring minimal thermal (Brownian) noise under prescribed transmittance and absorbance constraints, by exhaustive simulation over all possible configurations, for different values (in a meaningful range) of the optical density and extinction coefficient of the third material. In all cases studied, the optimal designs consist of a stack of (H'|L) doublets topped by a stack of (H|L) doublets, confirming previous heuristic assumptions, and the achievable coating noise power spectral density reduction factor is \sim 0.5. The robustness of the found optimal designs against layer thickness deposition errors and uncertainties and/or fluctuations in the optical losses of the third material is also investigated. Possible margins for further thermal noise reduction by layer thickness optimization, and strategies to implement it, are discussed.

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