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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Nanosecond switching of photo-responsive liquid crystal diffraction gratings
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Nanosecond switching of photo-responsive liquid crystal diffraction gratings

机译:光敏液晶衍射光栅的纳秒切换

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摘要

The diffraction efficiency of periodic microstructures composed of photoresponsive liquid crystals and polymer gratings is modulated using visible CW or pulsed radiation. A polymeric template (static grating) enabled by holographic photopatterning was infiltrated by capillary flow with a high performance photosensitive (green) liquid crystal after the initial formation step. The infiltration realizes high quality diffractive structures containing well-aligned photosensitive LC molecules and layers separated by polymer walls in a transmission grating geometry. The optical anisotropy present due to the oriented liquid crystals induces a strong polarization dependence of the grating diffraction efficiency. Exposure of the periodic structure to green CW or pulsed excitation modulates both the spectral and amplitude transmission behavior of the grating structure. In particular, under the influence of single pulse excitation, the diffraction efficiency can be modulated from 87% to 17% in 4 ns with a spontaneous back relaxation time three orders of magnitude (microsecond) faster than the one observed for the same material conventionally aligned in standard glass cells. The ability to remotely and quickly change the diffraction properties of soft-composite periodic microstructures marks a breakthrough towards the realization of ultra-fast all-optical devices.
机译:使用可见光连续波或脉冲辐射调制由光响应性液晶和聚合物光栅组成的周期性微结构的衍射效率。在初始形成步骤之后,通过具有高性能光敏(绿色)液晶的毛细管流将可通过全息光图案形成的聚合物模板(静态光栅)浸润。渗透实现了高质量的衍射结构,该结构包含排列良好的光敏LC分子和在透射光栅几何结构中被聚合物壁隔开的层。由于取向的液晶而存在的光学各向异性引起光栅衍射效率的强偏振依赖性。周期性结构暴露于绿色连续波或脉冲激发会同时调制光栅结构的光谱和振幅传输行为。特别是,在单脉冲激发的影响下,可以在4 ns内将衍射效率从87%调制为17%,而自发的后向弛豫时间比常规对准的相同材料快三个数量级(微秒)。在标准玻璃池中。能够远程快速改变软复合周期性微结构的衍射特性的能力,标志着朝着实现超快速全光学器件的突破。

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