论文标题

优化挤压光的重力波检测器设计

Optimizing Gravitational-Wave Detector Design for Squeezed Light

论文作者

Richardson, Jonathan W., Pandey, Swadha, Bytyqi, Edita, Edo, Tega, Adhikari, Rana X.

论文摘要

实现第三代探测器的量子噪声靶标将需要10 dB的挤压光增强以及干涉仪臂中的兆瓦激光功率 - 这两者都需要对内部光学损失进行前所未有的控制。在这项工作中,我们提出了一种新型的优化方法,用于重力波检测器设计,旨在最大程度地提高常见但不可避免的光学制造和安装误差,这导致了高级Ligo的重大损失。作为概念证明,我们采用这些技术来对Ligo A+设计进行两部分优化。首先,我们优化了在吸收器存在下减少散射损失的手臂腔,因为目前限制了晚期Ligo的工作能力。然后,我们优化了信号回收腔,以最大程度地挤压性能,考虑到光学曲率的位置和半径上的逼真的误差。我们的发现表明,可以利用这些技术在当前和未来的重力波探测器中实现更大的量子噪声性能。

Achieving the quantum noise targets of third-generation detectors will require 10 dB of squeezed-light enhancement as well as megawatt laser power in the interferometer arms - both of which require unprecedented control of the internal optical losses. In this work, we present a novel optimization approach to gravitational-wave detector design aimed at maximizing the robustness to common, yet unavoidable, optical fabrication and installation errors, which have caused significant loss in Advanced LIGO. As a proof of concept, we employ these techniques to perform a two-part optimization of the LIGO A+ design. First, we optimize the arm cavities for reduced scattering loss in the presence of point absorbers, as currently limit the operating power of Advanced LIGO. Then, we optimize the signal recycling cavity for maximum squeezing performance, accounting for realistic errors in the positions and radii of curvature of the optics. Our findings suggest that these techniques can be leveraged to achieve substantially greater quantum noise performance in current and future gravitational-wave detectors.

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