Yan Hexuan, Si Luying, Li Gang, Zhao Lejian, Luo Wei, Ma Huiru, Guan Jianguo
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, School of Materials Science and Engineering, Wuhan University of Technology, Wuhan 430070, China.
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, Wuhan 430070, China.
Nanomaterials (Basel). 2022 May 30;12(11):1867. doi: 10.3390/nano12111867.
The rapid and robust response to external stimulus with a large volume deformation is of huge importance for the practical application of thermo-responsive photonic crystal film (TRPCF) in actuators, colorimetric sensors, and other color-related fields. Generally, decreasing the size of thermo-responsive photonic crystals and introducing micropores are considered to be two effective approaches to improve their responsiveness. However, they usually result in a poor mechanical property, which leads to optical instability. To solve these problems, a heterogeneous thermo-responsive photonic crystal film was developed here by integrating a thermosensitive hydrogel matrix poly(-isopropylacrylamide-co--methylolacrylamide) (P(NIPAM-co-NHMA)) with high-modulus, but non-thermosensitive poly(acrylic acid -co-2-hydroxyethyl methacrylate (P(AA-co-HEMA)) hydrogel-based photonic nanochains (PNCs). The as-obtained TRPCF based on PNCs (TRPCF-PNC) well combined the rapid response and improved the mechanical property. Typically, it can complete a response within 12 s from 26 to 44 °C, which was accompanied by a larger deformation of the matrix than that of the PNCs. The unique rapid thermochromic mechanism of the TRPCF-PNC is revealed here. Furthermore, it exhibits a high tensible property along the PNC-orientation direction and excellent optical stability. The response time of the TRPCF-PNC can conveniently modulate by changing the cross-linking degree of the PNCs or the content of the thermosensitive component in the matrix. The heterogeneous TRPCF-PNC is believed to have potential applications in artificial muscle and quick-response actuation devices.
对外部刺激做出快速且强烈的响应并伴有大体积变形,对于热响应光子晶体薄膜(TRPCF)在致动器、比色传感器及其他与颜色相关领域的实际应用极为重要。一般来说,减小热响应光子晶体的尺寸并引入微孔被认为是提高其响应性的两种有效方法。然而,它们通常会导致机械性能变差,进而引起光学不稳定性。为了解决这些问题,本文通过将高模量但非热敏的聚(丙烯酸-co-甲基丙烯酸2-羟乙酯)(P(AA-co-HEMA))水凝胶基光子纳米链(PNCs)与热敏水凝胶基质聚(N-异丙基丙烯酰胺-co-N-羟甲基丙烯酰胺)(P(NIPAM-co-NHMA))相结合,制备了一种异质热响应光子晶体薄膜。所制备的基于PNCs的TRPCF(TRPCF-PNC)很好地结合了快速响应并改善了机械性能。具体而言,它能在26至44℃下12秒内完成响应,且基质的变形比PNCs的变形更大。本文揭示了TRPCF-PNC独特的快速热变色机制。此外,它在PNC取向方向上表现出高拉伸性能和优异的光学稳定性。通过改变PNCs的交联度或基质中热敏组分的含量,可以方便地调节TRPCF-PNC的响应时间。这种异质TRPCF-PNC被认为在人工肌肉和快速响应驱动装置中具有潜在应用。