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Distinct Optical Properties of Hydrogen-Bonded Liquid Crystal Materials in Millimeter-Wave Region

机译:毫米波区域氢键液晶材料的不同光学性质

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General liquid crystal (LC) materials have considerably large birefringence in wide frequency regions in the electromagnetic wave spectra, extending to the THz, millimeter wave (MMW), and microwave. LC materials can potentially be applied to some excellent control devices in novel frequency regions as display devices in optics regions. However, the birefringence of LC materials synthesized for display applications generally decreases by approximately half in the MMW region. Furthermore, the small remaining absorption loss in the MMW region must lead to a fatal device loss, as the LC layer becomes extremely large in the application field. New LC materials beyond the display application have been desired in novel LC application fields. In this work, a new class of LC materials consisting of hydrogen bonding is evaluated in the MMW region for the first time. Some optical properties different from those of conventional LC materials are discovered. The most distinct property is that the birefringence of the hydrogen-bonded LC materials in the MMW region becomes considerably larger than that in visible rays, which is totally inversion in relation with conventional LC materials. The absorption coefficients are as small as those of the best LC materials developed for microwave applications. Although some disadvantages are associated with the application of actual devices in this stage, the distinct dispersion properties make a breakthrough imminent in this application fields.
机译:一般液晶(LC)材料在电磁波谱中的宽频率区域中具有大大大的双折射,延伸到THz,毫米波(MMW)和微波。 LC材料可以应用于新颖的频率区域中的一些优异控制装置,作为光学区域中的显示装置。然而,用于显示应用的LC材料的双折射通常在MMW区域中的大约一半减小。此外,MMW区域的小剩余吸收损失必须导致致命的器件丢失,因为LC层在应用领域变得非常大。在新颖的LC应用领域中需要超出显示应用的新型LC材料。在这项工作中,首次在MMW区域中评估由氢键组成的新类LC材料。发现一些与传统LC材料不同的光学性质。最明显的性质是MMW区域中的氢键Lc材料的双折射比在可见光中变得大大大,其与传统的LC材料完全反演。吸收系数与为微波应用开发的最佳LC材料那样小。尽管在该阶段在该阶段应用实际器件的应用相关,但是不同的分散特性在该应用领域迫在眉睫。

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