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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Subhertz linewidth diode lasers by stabilization to vibrationally and thermally compensated ultralow-expansion glass Fabry-Perot cavities
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Subhertz linewidth diode lasers by stabilization to vibrationally and thermally compensated ultralow-expansion glass Fabry-Perot cavities

机译:Subhertz LineWidth二极管激光器通过稳压和热补偿超膨胀玻璃法布里 - 珀罗腔

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We achieved a 0.5 Hz optical beat note linewidth with similar to 0.1 Hz/s frequency drift at 972 nm between two external cavity diode lasers independently stabilized to two vertically mounted Fabry-Perot (FP) reference cavities with a finesse of 400 000. Vertical FP reference cavities are suspended in midplane such that the influence of vertical vibrations to the mirror separation is significantly suppressed. This makes the setup virtually immune for vertical vibrations that are more difficult to isolate than horizontal vibrations. To compensate for thermal drifts the FP spacers are made from ultralow-expansion (ULE) glass which possesses a zero linear expansion coefficient. A design using Peltier elements in vacuum allows operation at an optimal temperature where the quadratic temperature expansion of ULE could be eliminated as well. The measured linear drift of such ULE FP cavity of 63 mHz/s was due to material aging and the residual frequency fluctuations were less than +/- 20 Hz during 16 h of measurement. Some part of the temperature-caused drift is attributed to the thermal expansion of the mirror coatings. Thermally induced fluctuations that cause vibrations of the mirror surfaces limit the stability of our cavity. By comparing two similar laser systems we obtain an Allan instability of 2 x 10(-15) between 0.1 and 10 s averaging time, which is close to the theoretical thermal noise limit.
机译:我们实现了0.5Hz光学节点NIGEWIDTH,其在两个外腔二极管激光器之间的972nm处与0.1Hz / s的频率漂移,在两个外腔二极管激光器之间独立地稳定在两个垂直安装的法布里 - 珀罗(FP)参考空腔,具有400 000的技巧。垂直FP参考空腔悬浮在中间平面中,使得显着抑制了垂直振动对镜子分离的影响。这使得设置几乎免受用于垂直振动的垂直振动,其比水平振动更难以隔离。为了补偿热漂移,FP间隔物由具有零线性膨胀系数的超级膨胀(ULE)玻璃制成。使用珀耳帖元素真空的设计允许在最佳温度下操作,其中可以消除ULe的二次温度膨胀。测量的这种ULE FP腔的线性漂移为63MHz / s,由于材料老化,并且在16小时的测量期间,剩余频率波动小于+/-20Hz。温度导致漂移的一些部分归因于镜涂的热膨胀。导致镜面振动的热诱导的波动限制了我们腔的稳定性。通过比较两个类似的激光系统,我们在0.1至10秒的平均时间之间获得2×10(-15)的Allan不稳定性,这接近理论热噪声限制。

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