材料科学
液晶
阈值电压
透射率
电压
光电子学
饱和(图论)
聚合物
色散(光学)
液晶显示器
快速切换
响应时间
固化(化学)
紫外线固化
低压
Crystal(编程语言)
灵活的显示器
智能材料
切换时间
低频
复合材料
作者
Haokai Wang,Wanghan Sheng,Shikang Zhang,Guanqiao Wang,Yanjun Zhang
出处
期刊:Molecules
[Multidisciplinary Digital Publishing Institute]
日期:2026-04-23
卷期号:31 (9): 1402-1402
标识
DOI:10.3390/molecules31091402
摘要
Traditional polymer-dispersed liquid crystal (PDLC) faces limitations in smart dimming applications due to high driving voltage and poor high-temperature stability. In this study, a high-birefringence liquid crystal (QYPDLC-901) was used to prepare PDLC films with liquid crystal contents ranging from 72 wt% to 80 wt%, achieved through synergistic regulation of a low-functional acrylic polymer system and a low-intensity curing process. The effects of liquid crystal content, cell gap, and temperature on electro-optical properties were systematically investigated. Optimal performance was obtained at a liquid crystal content of 77 wt%, with a low threshold voltage of 2.9 V, saturation voltage of 7 V, fast response (rise time 4.2 ms, decay time 47 ms), and a favorable balance between high on-state and low off-state transmittance. Microstructural analysis revealed that the superior performance results from uniform droplet dispersion and low interfacial energy. Furthermore, the PDLC exhibited excellent switching stability from 23 °C to 90 °C, maintaining a maximum transmittance of 93% at 90 °C, with increases of only 0.4 V in threshold voltage and 0.1 V in saturation voltage. This study provides an experimental basis for designing smart dimming devices suitable for low-voltage driving and extreme environments.
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