School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, P. R. China.
Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing 100083, P. R. China.
ACS Appl Mater Interfaces. 2023 Jan 11;15(1):2228-2236. doi: 10.1021/acsami.2c19197. Epub 2022 Dec 29.
Reverse-mode polymer-stabilized liquid crystal (PSLC) films have wide applications in smart windows for cars as well as buildings and dimming glasses due to their low haze, low energy consumption, and better safety in case of emergency power off. However, PSLC films usually have poor stability of electro-optical properties due to their low polymer content (ca. 5 wt %), and it still remains a challenging task to improve the stability and processability by increasing the polymer content in PSLC as the driving voltage might dramatically increase. In this work, a reverse-mode PSLC film with polymer walls was prepared, which showed excellent stability of electro-optical properties even after 150 000 cycles. The film was prepared through polymerization with a photomask, in which the monomers concentrated on specific areas to form patterned polymer walls. In this way, the polymer content could be increased dramatically and the anchoring effect would not be too strong, thus avoiding a sharp increase in the driving voltage. As a result, the desired reverse-mode film with high stability, relatively low driving voltage, and high contrast ratio was obtained. The effects of monomer compositions, curing temperature, UV light intensity, and the pattern of the photomask on the microstructures, as well as electro-optical performances of the films were carefully studied. This work provides a new idea for the preparation of reverse-mode electrically switchable light-transmittance controllable films with excellent stability and good electro-optical performance, which would broaden their application in smart cars, building windows, and dimming glasses for light management and potential energy saving.
反铁电聚合物稳定胆甾相液晶(PSLC)膜由于其低雾度、低能耗以及在紧急停电时具有更好的安全性,在汽车智能窗、建筑和调光眼镜等方面有广泛的应用。然而,由于 PSLC 膜中的聚合物含量较低(约 5wt%),其电光性能稳定性通常较差,通过增加 PSLC 中的聚合物含量来提高其稳定性和加工性能仍然是一项具有挑战性的任务,因为这可能会导致驱动电压的显著增加。在这项工作中,制备了一种具有聚合物壁的反铁电 PSLC 膜,即使经过 15 万次循环后,其电光性能稳定性仍非常出色。该膜是通过使用光掩模进行聚合制备的,其中单体集中在特定区域以形成图案化聚合物壁。这样,聚合物含量可以显著增加,而锚定效应不会太强,从而避免驱动电压的急剧增加。因此,获得了具有高稳定性、相对低驱动电压和高对比度的理想反铁电膜。详细研究了单体组成、固化温度、UV 光强度和光掩模图案对膜的微结构和电光性能的影响。这项工作为制备具有优异稳定性和良好电光性能的反铁电电可切换透光率可控膜提供了新的思路,有望拓宽其在智能汽车、建筑窗户和调光眼镜等领域的应用,以实现智能光管理和潜在节能。