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半自由膜中自组织胆甾型光栅的光驱动旋转和螺距调谐

Light-Driven Rotation and Pitch Tuning of Self-Organized Cholesteric Gratings Formed in a Semi-Free Film.

作者信息

Ma Ling-Ling, Duan Wei, Tang Ming-Jie, Chen Lu-Jian, Liang Xiao, Lu Yan-Qing, Hu Wei

机构信息

National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures and College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, China.

Department of Electronic Engineering, School of Information Science and Engineering, Xiamen University, Xiamen 361005, China.

出版信息

Polymers (Basel). 2017 Jul 21;9(7):295. doi: 10.3390/polym9070295.

Abstract

Cholesteric liquid crystal (CLC) has attracted intensive attention due to its ability to form a periodic helical structure with broad tunability. CLC gratings in open systems are especially promising in sensing and micromanipulation. However, there is still much to learn about the inherent mechanism of such gratings. We investigate the light-driven rotation and pitch-tuning behaviors of CLC gratings in semi-free films which are formed by spin-coating the CLC mixtures onto planarly photoaligned substrates. The doped azobenzene chiral molecular switch supplies great flexibility to realize the continuous grating rotation. The maximum continuous rotational angle reaches 987.8°. Moreover, dependencies of light-driven rotation and pitch tuning on the dopant concentration and exposure are studied. The model of director configuration in the semi-free film is constructed. Precise beam steering and synchronous micromanipulation are also demonstrated. Our work may provide new opportunities for the CLC grating in applications of beam steering, micromanipulation, and sensing.

摘要

胆甾相液晶(CLC)因其能够形成具有广泛可调性的周期性螺旋结构而备受关注。开放系统中的CLC光栅在传感和微操纵方面尤其具有潜力。然而,关于此类光栅的内在机制仍有许多有待了解之处。我们研究了通过将CLC混合物旋涂到平面光取向基板上形成的半自由薄膜中CLC光栅的光驱动旋转和螺距调谐行为。掺杂的偶氮苯手性分子开关为实现光栅的连续旋转提供了极大的灵活性。最大连续旋转角度达到987.8°。此外,还研究了光驱动旋转和螺距调谐对掺杂剂浓度和曝光的依赖性。构建了半自由薄膜中指向矢构型的模型。还展示了精确的光束转向和同步微操纵。我们的工作可能为CLC光栅在光束转向、微操纵和传感应用中提供新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4be/6432147/5655b979f3ac/polymers-09-00295-g001.jpg

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