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2025 年 9 月 8 日 星期一 · 数据截至 arXiv / ADS 最新收录日
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优先级 70 · 引力波电磁对应体 · 多信使触发与联合

Error signals for overcoming the laser power limits of gravitational-wave detectors

克服引力波探测器激光功率极限的误差信号

Tao Liu, Pooyan Goodarzi, Jonathan W. Richardson

原文摘要Abstract

A major barrier to improving the quantum-limited sensitivity of gravitational-wave observatories is the thermal distortions of the test masses which arise at megawatt laser power. Recent advances in a new form of higher-order wavefront correction, in which corrective heating profiles are applied to the test mass surfaces near their edges, together with other planned instrumental upgrades, have the potential to enable a tenfold reduction of the quantum noise floor of future detectors. However, realizing high levels of quantum noise reduction in practice hinges on identifying measurable error signals to finely control each wavefront actuator, in order to suppress wavefront errors to a few-nanometer precision across the full mirror apertures. No direct source of such an error signal exists in Laser Interferometer Gravitational-Wave Observatory (LIGO) today. We demonstrate that thermally imaging the surface of each test mass, with a calibration provided by existing Hartmann wavefront sensors, can provide these critical error signals. We show that the surface temperature profiles obtained from thermal imaging can be uniquely mapped to a finite element model of the mirror whose complete thermal state is identified, enabling full-aperture wavefront reconstruction and direct error signals for real-time precision wavefront control. This new sensing capability can enable up to a 31% strain sensitivity improvement in LIGO A+ at 95% confidence, increasing the sky-averaged detection range for binary neutron star mergers by 10 Mpc, and will be integral to a next-generation 40 km gravitational-wave observatory in the U.S., Cosmic Explorer.

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AI 综述 AI-generated · 以原文为准
亮点

创新性地将镜面热成像温度分布唯一映射至有限元模型,结合哈特曼波前传感器,首次为实时精密波前控制提供直接误差信号,可将LIGO A+的应变灵敏度提升高达31%,并成为下一代Cosmic Explorer的关键技术。

脉络与展望

当前引力波探测器在迈向兆瓦级激光功率时,测试质量的热畸变严重制约量子极限灵敏度。近期发展的边缘加热等高阶波前校正技术虽能缓解热透镜效应,但一直缺乏实现纳米级全孔径波前控制所需的可测量误差信号。本文通过热成像相机获取镜面温度分布,并利用有限元模型完整识别热状态,从而重建波前并产生实时反馈信号,填补了这一空白。该方法不仅可直接应用于LIGO A+的升级,使双中子星并合探测距离增加10 Mpc,更将为美国下一代40公里臂长的宇宙探索者(Cosmic Explorer)提供核心的热控支撑。随着自适应光学与热管理技术的深度融合,未来引力波探测器有望完全突破功率壁垒,大幅拓宽引力波天文学的观测窗口。

预印本 2025-09-08 · 接收 2026-07-06 · 刊出 2026-07-16 · 收录 2026-07-27