论文标题
3 m $ \ times $ 3 m杂色的被动谐振陀螺仪,腔长稳定
3 m$\times$3 m heterolithic passive resonant gyroscope with cavity length stabilization
论文作者
论文摘要
大规模的高灵敏度激光陀螺仪在地面和空间的重力波检测中具有重要的应用。我们报告开发3 m $ \ $ $ 3 m的杂色的被动谐振陀螺仪(HUST-1),该谐振1安装在洞穴实验室的地面上。我们在不同的纵向空腔模式上操作HUST-1,旋转灵敏度达到$ 1.6 \ times10^{ - 9} $ rad/s/s/$ \ rm \ rm \ sqrt {hz} $超过1 Hz。空腔长度的漂移是低频制度中陀螺仪的主要灵敏度极限之一。通过将空腔长度锁定到超稳定的参考激光器,我们达到了分数空腔长度的稳定性,$ 5.6 \ times10^{ - 9} $ m $/\ rm \ rm \ rm \ sqrt {hz} $在0.1 MHz,比低频率制度的无约束腔的四个数量级提高。我们通过主动反馈稳定大规模异光无源谐振陀螺仪的空腔长度并实现长期操作。旋转灵敏度达到$ 1.7 \ times10^{ - 7} $ rad/s/$ \ sqrt {\ rm {hz}} $在0.1 MHz处,这是三个数量级的改进,不再受此频率范围内的空腔长度漂移的限制。
Large-scale high sensitivity laser gyroscopes have important applications for ground-based and space-based gravitational wave detection. We report on the development of a 3 m$\times$3 m heterolithic passive resonant gyroscope (HUST-1) which is installed on the ground of a cave laboratory. We operate the HUST-1 on different longitudinal cavity modes and the rotation sensitivity reaches $1.6\times10^{-9}$ rad/s/$\rm \sqrt{Hz}$ beyond 1 Hz. The drift of the cavity length is one of the major sensitivity limits for our gyroscope in the low frequency regime. By locking cavity length to an ultra-stable reference laser, we achieve a fractional cavity length stability of $5.6\times10^{-9}$ m$/\rm \sqrt{Hz}$ at 0.1 mHz, a four orders of magnitude improvement over the unconstrained cavity in the low frequency regime. We stabilize the cavity length of a large-scale heterolithic passive resonant gyroscope through active feedback and realize long-term operation. The rotation sensitivity reaches $1.7\times10^{-7}$ rad/s/$\sqrt{\rm{Hz}}$ at 0.1 mHz, a three orders of magnitude improvement, which is no longer limited by the cavity length drift in this frequency range.