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Optical Membrane Technology for Deep Space Optical Communications Filters

机译:深空光通信过滤器的光学膜技术

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Large filters are being considered to allow large Earth-based optical communication receiver apertures to maintain communication with deep-space terminals as their orbits take them around the Sun. Optical membranes have been investigated as a promising substrate for such filters; their low weight offers great flexibility in mounting, while their ~10 micron thickness should be helpful in avoiding optical aberrations. Critical performance parameters of membrane filter samples are presented. Interferometry has shown generally good performance of the material for transmission applications, though aberrations near membrane seams are currently excessive. Scattering measurements at 1.064 microns show scatter of .05-.15 sr{sup}(-1), though variations of the plastic formulation show promise for reducing this to .01 sr{sup}(-1). Finally, in-situ application of filter samples have demonstrated that their insertion currently results in an increase to stellar point spread functions of ~3-4 arcseconds at the intended 1.064 micron transmission wavelength. Filter designs concentrating on metallic induced-transmission filters are presented for application as a solar rejection filter on membrane substrates. Accomplishing efficient rejection of solar radiation, and high throughput at the communication wavelength with relatively few layers, these filter designs appear ideal for application to large filters for earth-based optical communication receivers.
机译:正在考虑大型过滤器以允许大型地球的光通信接收器孔,以保持与深空端子的通信,因为它们的轨道带到太阳周围。已经研究了光学膜作为这种过滤器的有希望的基材;它们的低重量在安装时具有很大的灵活性,而其〜10微米厚度应有助于避免光学像差。提出了膜滤波器样本的关键性能参数。干涉测量术一般表现出用于传动应用的材料的良好性能,但膜接缝附近的像差目前是过度的。散射测量为1.064微米,显示散射散射.05-.15 sr {sup}( - 1),尽管塑料制剂的变化显示将其降低至.01 sr {sup}( - 1)。最后,原位应用过滤器样品的应用已经证明,它们的插入目前导致在预期的1.064微米传输波长下增加〜3-4个弧形秒的恒星点扩散函数。滤波器设计在金属诱导透射滤光器上呈现在膜基材上的太阳能抑制过滤器。实现高效抑制太阳辐射,并且具有相对较少的层的通信波长的高吞吐量,这些过滤器设计对于应用于基于地球的光通信接收器的大型滤波器来说是理想的。

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