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Multilayer reflective polarizers for the far ultraviolet

机译:远紫外线用多层反射偏振片

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Polarimetry in the far ultraviolet (FUV) is a powerful tool for the interpretation of the role of the coronal plasma in the energy transfer processes from the inner parts of the Sun to the outer space. FUV polarimetry from space provides more accurate observations on the kinetics of the features and on local magnetic fields through the Doppler and Hanle resonant electron scattering effects. Particularly interesting lines for FUV polarimetry are H Lyman a (121.6 nm) and P (102.6 nm), along with OVI lines at 103.2 and 103.8 nm. One key element to perform polarimetry measurements at these wavelengths is the need of efficient polarizers. A limitation of the available polarizers, such as crystal plates of MgF_2 and LiF working at Brewster angle, is their moderate reflectance at the non-extinguished component of the electric field, which results in a modest polarizer efficiency. Research is underway to develop efficient polarizers operating in the short FUV based on reflective multilayer coatings. First wavelength target is 121.6 nm. We have obtained promising preliminary results with (Al/MgF_2)_3 multilayer polarizers. Their reflectance for both s (TE) and p (TM) polarization has been measured as a function of the angle of incidence and wavelength at BEAR beamline of ELETTRA synchrotron. The analysis of the first campaign enabled refining the designs for a second campaign, which has resulted in efficient polarizers in a range around 121.6 nm. Future research will address the stability of these polarizers both in atmosphere and in relevant conditions for space optics.
机译:远紫外线(FUV)的极化测定法是一种强有力的工具,可用来解释日冕等离子体在从太阳内部到外部空间的能量传输过程中的作用。太空的FUV极化技术通过多普勒和汉勒共振电子散射效应,提供了关于特征动力学和局部磁场的更精确观测。 FUV旋光法中特别有趣的谱线是H Lyman a(121.6 nm)和P(102.6 nm),以及在103.2和103.8 nm的OVI谱线。在这些波长下执行偏振测量的一个关键因素是需要高效的偏振器。可用偏振器(例如以布鲁斯特角工作的MgF_2和LiF晶体板)的局限性是它们在电场的未熄灭分量中的反射率适中,导致偏振器效率适中。正在进行研究以开发基于反射多层涂层的在短FUV中运行的高效偏振器。第一波长目标是121.6nm。我们已经用(Al / MgF_2)_3多层偏振器获得了令人鼓舞的初步结果。已经测量了它们对s(TE)和p(TM)偏振的反射率,它是ELETTRA同步加速器的BEAR光束线处入射角和波长的函数。通过对第一个活动的分析,可以完善第二个活动的设计,从而产生了有效偏振器,范围约为121.6 nm。未来的研究将解决这些偏振器在大气和空间光学相关条件下的稳定性。

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