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A six-apertures discrete beam combiners for J-band interferometry

机译:用于J波段干涉测量的六个孔径离散梁组合器

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The astronomical J-band (1.25 micrometres) is a relatively untapped wave-band in long-baseline infrared interferometry. It allows access to the photosphere in giant and super-giant stars relatively free from opacities of molecular bands. The J-band can potentially be used for imaging spots in the 1350 nm ionised iron line on slowly rotating magnetically-active stars through spectro-interferometry. In addition, the access to the 1080 nanometres He I line may probe outflows and funnel-flows in T-Tauri stars and allow the study of the star-disk interaction. We present the progress in the development of a six-inputs, J-band interferometric beam combiner based on the discrete beam combiner (DBC) concept. DBCs are periodic arrays of evanescent coupled waveguides which can be used to retrieve simultaneously the complex visibility of every baseline from a multi-aperture interferometer. Existing, planned or future interferometric facilities combine or will combine six or more telescopes at the time, thus increasing the snapshot uv coverage from the interferometric measurements. A better uv coverage will consequently enhance the accuracy of the image reconstruction. DBCs are part of the wider project Integrated astrophotonics that aims to validates photonic technologies for utilisation in astronomy. Before manufacturing the component we performed extensive numerical simulations with a coupled modes model of the DBC to identify the best input configuration and array length. The 41 waveguides were arranged on a zig-zag array that allows a simple optical setup for dispersing the light at the output of the waveguides. The component we are currently developing is manufactured in borosilicate glass using the technique of multipass ultrafast laser inscription (ULI), using a mode-locked Yb:KYW laser at the wavelength of 1030 nm, pulse duration of 300 fs and repetition rate of 1 MHz. After annealing, the written components showed a propagation loss less than 0.3 dB/cm and a negligible birefringence at. a wavelength of 1310 nm, which makes the components suitable for un-polarizcd light operation. A single mode fiber-to-component insertion loss of 0.9 dB was measured. Work is currently in progress to characterize the components in spectro-interferometric mode with white light covering the J-band spectrum.
机译:天文J波段(1.25微米)是长基线红外干涉法中相对未开发的波浪。它允许访问巨型和超大恒星的光翼,相对不含分子带的不透明度。通过光谱干涉测量,J带可能用于缓慢旋转磁极活性恒星的1350nm电离的铁管线中的成像斑点。此外,进入1080纳米的I线可以探测T-TAURI星星中的流出和漏斗流,并允许研究星形盘相互作用。我们基于离散梁组合器(DBC)概念,介绍了六输入的六输入的J频带干涉梁组合器的进展。 DBCS是消逝耦合波导的周期性阵列,其可用于同时从多孔径干涉仪同时检索每个基线的复杂可见度。现有的,计划或未来的干涉设施结合或将当时结合六个或更多个望远镜,从而增加来自干涉测量测量的快照UV覆盖。因此,更好的UV覆盖率将提高图像重建的准确性。 DBCS是更广泛的项目集成天文学学的一部分,旨在验证用于天文学的光子技术的光子技术。在制造组件之前,我们使用DBC的耦合模式模型进行了广泛的数值模拟,以识别最佳输入配置和阵列长度。 41波导布置在Zig-Zag阵列上,允许简单的光学设置,用于将光分散在波导的输出端。我们目前正在开发的组件是在硼硅酸盐玻璃中使用多元超快激光激光题字(ULI)的技术制造,使用模式锁定的Yb:Kyw激光器在1030 nm的波长,脉冲持续时间为300 fs和1 MHz的重复率。退火后,书面组分显示出小于0.3dB / cm的传播损耗和可忽略不计的双折射。波长为1310nm,这使得适用于未偏振光的部件。测量单模光纤到组件插入损耗为0.9dB。目前正在进行工作,以表征具有覆盖J波段谱的白光的光谱干涉模式中的组件。

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