Stretchable and foldable waveplate based on liquid crystal polymer

Stretchable and foldable waveplate based on liquid crystal polymer
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基于液晶聚合物的可拉伸可折叠波片

DOI:
10.1063/5.0027919
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发表时间:
2020-12
影响因子:
4
通讯作者:
Shuangchun Wen
Shuangchun Wen
中科院分区:
物理与天体物理2区
文献类型:
--
作者:
Yan Wu;Yang Yang;Ting Li;Sijia Huang;Huihui Huang;Shuangchun Wen

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柔性光子器件不受限制的柔性实现和调节了器件独特的光电特性,极大地拓展了光电器件的发展模式和应用空间。其中,波片对于光的偏振度的灵活调制和设计至关重要。然而,先前关于波片的报道没有解决高效率、可调谐相位延迟和灵活性的问题。在这里,我们提出了一种超薄,柔性,可折叠,可拉伸波片基于液晶聚合物使用水溶转移方法。通过琼斯矩阵分析和对液晶波片光学性能的研究,结果表明所制备的液晶柔性波片整体结构具有较高的保真度,其光学性能与理论预测吻合较好。柔性波片被用作智能手机的可折叠有机发光二极管显示器的抗反射。
The unrestricted flexibility of flexible photonic devices realizes and adjusts the unique optoelectronic properties of the device, greatly expanding the development mode and application space of optoelectronic devices. Among them, the waveplate is critical for flexible modulation and design of the degree of polarization of light. However, previous reports on waveplates have not addressed the issues of high efficiency, tunable phase delay, and flexibility. Here, we proposed an ultra-thin, flexible, foldable, and stretchable waveplate based on liquid crystal polymer using a water-soluble transfer method. Through Jones Matrix analysis and research on the optical performance of the liquid crystal waveplate, the results show that the overall structure of the prepared liquid crystal flexible waveplate has high fidelity, and its optical performance is in good agreement with the theoretical prediction. The flexible waveplates were used as anti-reflection for foldable organic light-emitting diode displays of smartphones.
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