论文标题
Simons天文台:超材料微波吸收器(MMA)及其低温应用
The Simons Observatory: Metamaterial Microwave Absorber (MMA) and its Cryogenic Applications
论文作者
论文摘要
在毫米波长下控制流浪光需要特殊的光学设计和吸收材料的选择,这些材料应与低温工作环境兼容。尽管存在多种吸收材料,但这些吸收材料通常表现出很高的折射率,并在吸收前反射/散布了大量的光。对于许多较低的索引材料,例如商业微波吸收器,它们在低温环境中的应用都具有挑战性。在本文中,我们提出了一种控制杂散光的新工具:超材料微波吸收器瓷砖。这些瓷砖包含一个超材料的外层层,该层近似于有损梯度指数抗反射涂层。它们是通过注射造型市售的碳载聚氨酯(25 \%的质量)来制造的。注射成型技术可以低成本使大规模生产。提出了这些瓷砖的设计,以及对1 K的热测试。室温光学测量结果验证了它们对反射率的控制率低于1 \%,最高为65 $ \ circ $ circ $发射率,以及对0.01 \%以下的广角散射的控制。在不同温度下还测量了瓷砖中使用的大量碳载体材料的介电性能,证实该材料将相似的介电性能保持在3 k。
Controlling stray light at millimeter wavelengths requires special optical design and selection of absorptive materials that should be compatible with cryogenic operating environments. While a wide selection of absorptive materials exists, these typically exhibit high indices of refraction and reflect/scatter a significant fraction of light before absorption. For many lower index materials such as commercial microwave absorbers, their applications in cryogenic environments are challenging. In this paper, we present a new tool to control stray light: metamaterial microwave absorber tiles. These tiles comprise an outer metamaterial layer that approximates a lossy gradient index anti-reflection coating. They are fabricated via injection molding commercially available carbon-loaded polyurethane (25\% by mass). The injection molding technology enables mass production at low cost. The design of these tiles is presented, along with thermal tests to 1 K. Room temperature optical measurements verify their control of reflectance to less than 1\% up to 65$\circ$ angles of incidence, and control of wide angle scattering below 0.01\%. The dielectric properties of the bulk carbon-loaded material used in the tiles is also measured at different temperatures, confirming that the material maintains similar dielectric properties down to 3 K.