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Research Article

The role of nanomesh fibres loaded with fluorescent materials on the electro-optical performance of PDLC devices

, , , , , , & show all
Pages 2037-2050 | Received 12 May 2022, Accepted 21 Jun 2022, Published online: 01 Jul 2022
 

ABSTRACT

In this paper, polymer-dispersed liquid crystal (PDLC) films were prepared from a mixture of prepolymer, liquid crystal and phosphor-loaded reticular nanofibres films by a polymerisation-induced phase separation (PIPS) process. By comparing the microstructure and electro-optical curves of samples with different ratios of monomer types and liquid crystal contents, it was demonstrated that the cavity size of the polymer network had a significant effect on the electro-optical properties of the PDLC films. Reticular nanofibres films loaded with different phosphor contents were introduced into the liquid crystal mixture samples and the changes in the polymer network, electro-optical and fluorescence properties of these samples were analysed using SEM images, electro-optical curves and fluorescence curves. The electro-optical and fluorescence properties as well as the fluorescence properties of reticulated nanofibres films doped with PDLCs loaded with fluorescent materials were found to be improved and the anti-ageing properties are also greatly increased. Therefore, the development of meshed nanofiber membrane-doped PDLC films with faster response time, better optoelectronic properties, and better fluorescence properties will greatly improve the applications of PDLC-based devices in smart windows, sensors, energy efficiency and Potential technical applications in flexible devices.

Graphical abstract

Disclosure statement

No potential conflict of interest was reported by the author(s).

Additional information

Funding

This work was supported by the National Natural Science Foundation of China [Grant No. 52173263, 21203135], Natural Science Basic Research Plan in Shanxi Province of China (Program No.2021JM-531, No.2021GY-205), Scientific research fund for high-level talents of Xijing University [No. XJ21B04 and No. XJ21B02], the Youth Innovation Team of Shanxi Universities, the Science and Technology Projects of Suzhou City [SYG202025].

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