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Geometric phase-encoded stimuli-responsive cholesteric liquid crystals for visualizing real-time remote monitoring: humidity sensing as a proof of concept.
Li, Shi-Long; Chen, Zhao-Yi; Chen, Peng; Hu, Wei; Huang, Chaohong; Li, Sen-Sen; Hu, Xuejia; Lu, Yan-Qing; Chen, Lu-Jian.
Afiliação
  • Li SL; Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, 361005, Xiamen, China.
  • Chen ZY; Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, 361005, Xiamen, China.
  • Chen P; College of Engineering and Applied Sciences, Nanjing University, 210093, Nanjing, China.
  • Hu W; College of Engineering and Applied Sciences, Nanjing University, 210093, Nanjing, China.
  • Huang C; Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, 361005, Xiamen, China.
  • Li SS; Fujian Key Laboratory of Ultrafast Laser Technology and Applications, Xiamen University, 361005, Xiamen, China.
  • Hu X; Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, 361005, Xiamen, China.
  • Lu YQ; Fujian Key Laboratory of Ultrafast Laser Technology and Applications, Xiamen University, 361005, Xiamen, China.
  • Chen LJ; Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, 361005, Xiamen, China.
Light Sci Appl ; 13(1): 27, 2024 Jan 24.
Article em En | MEDLINE | ID: mdl-38263398
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.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Light Sci Appl Ano de publicação: 2024 Tipo de documento: Article País de afiliação: China

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Light Sci Appl Ano de publicação: 2024 Tipo de documento: Article País de afiliação: China