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Quantum Measurement Theory in Gravitational-Wave Detectors

机译:引力波探测器中的量子测量理论

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The fast progress in improving the sensitivity of the gravitational-wave detectors, we all have witnessed in the recent years, has propelled the scientific community to the point at which quantum behavior of such immense measurement devices as kilometer-long interferometers starts to matter. The time when their sensitivity will be mainly limited by the quantum noise of light is around the corner, and finding ways to reduce it will become a necessity. Therefore, the primary goal we pursued in this review was to familiarize a broad spectrum of readers with the theory of quantum measurements in the very form it finds application in the area of gravitational-wave detection. We focus on how quantum noise arises in gravitational-wave interferometers and what limitations it imposes on the achievable sensitivity. We start from the very basic concepts and gradually advance to the general linear quantum measurement theory and its application to the calculation of quantum noise in the contemporary and planned interferometric detectors of gravitational radiation of the first and second generation. Special attention is paid to the concept of the Standard Quantum Limit and the methods of its surmounting.
机译:近年来,我们大家都目睹了提高引力波探测器灵敏度的飞速进步,这已将科学界推到了诸如千米长干涉仪之类的巨大测量设备的量子行为开始重要的地步。它们的灵敏度将主要受到光的量子噪声限制的时刻迫在眉睫,寻找降低其灵敏度的方法将变得必要。因此,我们在这篇综述中追求的主要目标是以其在重力波检测领域的应用形式使广泛的读者熟悉量子测量的理论。我们关注于引力波干涉仪中如何产生量子噪声,以及它对可实现的灵敏度有何限制。我们从最基本的概念开始,逐步发展到一般的线性量子测量理论,并将其应用到第一代和第二代重力辐射的当代和计划干涉式探测器中的量子噪声计算中。特别注意标准量子极限的概念及其克服方法。

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