论文标题

横向直径较大的越野光腔

Crossed optical cavities with large mode diameters

论文作者

Heinz, A., Trautmann, J., Šantić, N., Park, A. J., Bloch, I., Blatt, S.

论文摘要

我们报告了一个紧凑的超高维库姆兼容光学组件,以创建大规模的二维光学晶格,以用于超电原子的实验中。该组件由一个由超低膨胀玻璃制成的八角形垫片组成,我们将其光学接触四个熔融硅腔镜,使其高度机械地和热稳定。镜面几乎是平行平行的,它使我们能够创建两个垂直腔模式,并带有直径$ \ sim $ 1毫米。这种大模式直径是需要增加光学晶格均匀性的,但会导致两种腔模式之间的共晶格的强角敏感性。我们展示了一个程序,可以精确地定位每个镜子基板,该基材与$ d = 1(5)$ $ $ m $ m $ d = 1(5)$ $ m。在任意可见和接近红外波长的情况下创建大型光学晶格需要显着增强功率,以克服可用激光功率的局限性。腔镜具有定制的低损坏镜涂层,可在一组相关波长的功率从可见的波长到近红外,最多三个数量级。

We report on a compact, ultrahigh-vacuum compatible optical assembly to create large-scale, two-dimensional optical lattices for use in experiments with ultracold atoms. The assembly consists of an octagon-shaped spacer made from ultra-low-expansion glass, to which we optically contact four fused-silica cavity mirrors, making it highly mechanically and thermally stable. The mirror surfaces are nearly plane-parallel which allows us to create two perpendicular cavity modes with diameters $\sim$1 mm. Such large mode diameters are desirable to increase the optical lattice homogeneity, but lead to strong angular sensitivities of the coplanarity between the two cavity modes. We demonstrate a procedure to precisely position each mirror substrate that achieves a deviation from coplanarity of $d = 1(5)$ $μ$m. Creating large optical lattices at arbitrary visible and near infrared wavelengths requires significant power enhancements to overcome limitations in the available laser power. The cavity mirrors have a customized low-loss mirror coating that enhances the power at a set of relevant wavelengths from the visible to the near infrared by up to three orders of magnitude.

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