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首页> 外文期刊>Astronomy and astrophysics >A novel technique to control differential birefringence in optical interferometers - Demonstration on the PIONIER-VLTI instrument
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A novel technique to control differential birefringence in optical interferometers - Demonstration on the PIONIER-VLTI instrument

机译:控制光学干涉仪中差分双折射的新技术-在PIONIER-VLTI仪器上的演示

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Context. Optical interferometers are subject to many atmospheric and instrumental artifacts that contribute to the degradation of their instrumental contrast, hence their performances. The differential birefringence is, among these effects, one of the trickiest to control, in particular for instrument using fibers, where it can be far larger than the one arising in the optical mirror trains. Several solutions have been tested in the past, ranging from polarization splitting to fiber tweaking. We adopt a new solution for the PIONIER instrument, a four-telescope (4T) combiner at the Very Large Telescope Interferometer (VLTI). Aims. We present a method to cancel the instrumental birefringence in an optical interferometer, allowing the joint detection of the fringe patterns of both polarizations, and substantial gains to be made in both signal-to-noise ratio and readout speed. Methods. A thin (2?mm) plate of birefringent material (LiNbO3) is inserted in each of the four beams. The incidence angle of each plate is adjustable. This allows us to introduce a controlled amount of birefringence in each beam and to cancel the instrumental differential birefringence. We present our derivation of the induced birefringence versus incidence angle and discuss the design choices. Results. Our proposed solution is implemented in the Pionier instrument. Before correction, the instrumental birefringence was of order 5?μm (path length). The adjustment takes about one hour, results in a birefringence of less than 0.1?μm, and is stable for at least the duration of an observing run (several days). Conclusions. We demonstrate on an operational near-infrared interferometer a novel, simple, low-cost, and effective technique to control the differential birefringence. The predictability and stability of the correction make this technique ideal for an automated correction in the VLTI second generation instruments.
机译:上下文。光学干涉仪会受到许多大气和仪器伪像的影响,这会降低其仪器对比度,从而降低其性能。在这些效应中,差分双折射是控制最棘手的问题之一,尤其是对于使用光纤的仪器而言,这种情况可能比光学镜列中产生的折射大得多。过去已经测试了几种解决方案,从偏振分离到光纤微调。我们为PIONIER仪器采用了一种新的解决方案,这是超大型望远镜干涉仪(VLTI)的四望远镜(4T)合成器。目的我们提出了一种消除光学干涉仪中仪器双折射的方法,可以对两个偏振的条纹图案进行联合检测,并在信噪比和读出速度上获得实质性的收益。方法。将一块薄的(2?mm)双折射材料(LiNbO3)板插入四个光束中。每个板的入射角是可调的。这使我们能够在每个光束中引入受控量的双折射,并消除仪器的差分双折射。我们介绍了诱导双折射与入射角的关系,并讨论了设计选择。结果。我们提出的解决方案在Pionier仪器中实现。在校正之前,仪器的双折射约为5?μm(光程)。调整大约需要一小时,导致双折射小于0.1?μm,并且至少在观察运行的持续时间内(几天)保持稳定。结论。我们在可操作的近红外干涉仪上演示了一种新颖,简单,低成本且有效的技术来控制差分双折射。校正的可预测性和稳定性使该技术成为VLTI第二代仪器中自动校正的理想选择。

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