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Precision requirements and innovative manufacturing for ultrahigh precision laser interferometry of gravitational-wave astronomy

机译:重力波天文学的超高精度激光干涉仪的精度要求和创新制造

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With the LIGO announcement of the first direct detection of gravitational waves (GWs), the GW Astronomy was formally ushered into our age. After one-hundred years of theoretical investigation and fifty years of experimental endeavor, this is a historical landmark not just for physics and astronomy, but also for industry and manufacturing. The challenge and opportunity for industry is precision and innovative manufacturing in large size - production of large and homogeneous optical components, optical diagnosis of large components, high reflectance dielectric coating on large mirrors, manufacturing of components for ultrahigh vacuum of large volume, manufacturing of high attenuating vibration isolation system, production of high-power high-stability single-frequency lasers, production of high-resolution positioning systems etc. In this talk, we address the requirements and methods to satisfy these requirements. Optical diagnosis of large optical components requires large phase-shifting interferometer; the 1.06 μm Phase Shifting Interferometer for testing LIGO optics and the recently built 24" phase-shifting Interferometer in Chengdu, China are examples. High quality mirrors are crucial for laser interferometric GW detection, so as for ring laser gyroscope, high precision laser stabilization via optical cavities, quantum optomechanics, cavity quantum electrodynamics and vacuum birefringence measurement. There are stringent requirements on the substrate materials and coating methods. For cryogenic GW interferometer, appropriate coating on sapphire or silicon are required for good thermal and homogeneity properties. Large ultrahigh vacuum components and high attenuating vibration system together with an efficient metrology system are required and will be addressed. For space interferometry, drag-free technology and weak-light manipulation technology are must. Drag-free technology is well-developed. Weak-light phase locking is demonstrated in the laboratories while weak-light manipulation technology still needs developments.
机译:随着LIGO首次直接检测引力波(GW),GW天文学正式进入了我们的时代。经过一百年的理论研究和五十年的实验努力,这不仅是物理和天文学,而且是工业和制造业的历史里程碑。工业面临的挑战和机遇是大尺寸的精密和创新制造-大型和均质光学组件的生产,大型组件的光学诊断,大镜子上的高反射率介电涂层,大批量超高真空组件的制造,衰减隔振系统,大功率高稳定性单频激光器的生产,高分辨率定位系统的生产等。在本次演讲中,我们着眼于满足这些要求的要求和方法。大型光学组件的光学诊断需要大型相移干涉仪;例如,用于测试LIGO光学器件的1.06μm相移干涉仪和最近在中国成都建成的24“相移干涉仪。高质量的反射镜对于激光干涉GW检测至关重要,因此对于环形激光陀螺仪而言,通过光学腔,量子光力学,腔量子电动力学和真空双折射测量。对衬底材料和涂覆方法有严格的要求。对于低温GW干涉仪,需要在蓝宝石或硅上适当涂覆以确保良好的热和均匀性。大型超高真空组件高衰减振动系统和高效的计量系统是必需的,并且将得到解决;对于空间干涉仪,必须使用无拖曳技术和弱光操纵技术;无拖曳技术已经得到了很好的发展。在实验室进行演示,同时进行弱光操作在技​​术上仍然需要发展。

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