Geometric phase-encoded stimuli-responsive cholesteric liquid crystals for visualizing real-time remote monitoring: humidity sensing as a proof of concept.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-01-24 DOI:10.1038/s41377-023-01360-7
Shi-Long Li, Zhao-Yi Chen, Peng Chen, Wei Hu, Chaohong Huang, Sen-Sen Li, Xuejia Hu, Yan-Qing Lu, Lu-Jian Chen
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Abstract

Liquid crystals are a vital component of modern photonics, and recent studies have demonstrated the exceptional sensing properties of stimuli-responsive cholesteric liquid crystals. However, existing cholesteric liquid crystal-based sensors often rely on the naked eye perceptibility of structural color or the measurement of wavelength changes by spectrometric tools, which limits their practical applications. Therefore, developing a platform that produces recognizable sensing signals is critical. In this study, we present a visual sensing platform based on geometric phase encoding of stimuli-responsive cholesteric liquid crystal polymers that generates real-time visual patterns, rather than frequency changes. To demonstrate this platform's effectiveness, we used a humidity-responsive cholesteric liquid crystal polymer film encoded with a q-plate pattern, which revealed that humidity causes a shape change in the vortex beam reflected from the encoded cholesteric liquid crystal polymers. Moreover, we developed a prototype platform towards remote humidity monitoring benefiting from the high directionality and long-range transmission properties of laser beams carrying orbital angular momentum. Our approach provides a novel sensing platform for cholesteric liquid crystals-based sensors that offers promising practical applications. The ability to generate recognizable sensing signals through visual patterns offers a new level of practicality in the sensing field with stimuli-responsive cholesteric liquid crystals. This platform might have significant implications for a broad readership and will be of interest to researchers working in the field of photonics and sensing technology.

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用于可视化实时远程监控的几何相位编码刺激响应胆甾型液晶:湿度传感概念验证。
液晶是现代光子学的重要组成部分,最近的研究已经证明了刺激响应型胆甾液晶的卓越传感特性。然而,现有的基于胆甾型液晶的传感器通常依赖于肉眼对结构颜色的感知,或通过光谱工具对波长变化的测量,这限制了它们的实际应用。因此,开发一种能产生可识别传感信号的平台至关重要。在本研究中,我们提出了一种基于刺激响应型胆甾液晶聚合物几何相位编码的视觉传感平台,它能产生实时视觉图案,而不是频率变化。为了证明这一平台的有效性,我们使用了一种用 q 板图案编码的湿度响应型胆甾液晶聚合物薄膜,结果表明湿度会导致编码胆甾液晶聚合物反射的涡流光束发生形状变化。此外,我们还利用携带轨道角动量的激光束的高方向性和远距离传输特性,开发了一个用于远程湿度监测的原型平台。我们的方法为基于胆甾液晶的传感器提供了一种新型传感平台,具有广阔的实际应用前景。通过视觉图案产生可识别传感信号的能力为刺激响应型胆甾液晶传感领域的实用性提供了一个新的高度。该平台可能会对广大读者产生重大影响,光子学和传感技术领域的研究人员也会对此感兴趣。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
期刊最新文献
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