Textile Research Division, National Research Center (Affiliation ID: 60014618), Dokki, Cairo, Egypt.
Department of Chemistry, College of Science, King Saud University, Riyadh, Saudi Arabia.
Luminescence. 2021 Dec;36(8):2004-2013. doi: 10.1002/bio.4137. Epub 2021 Sep 24.
A smart photoluminescent nanocomposite surface coating was prepared for simple industrial production of long-persisting phosphorescence and superhydrophobic wood. The photoluminescent nanocomposite coatings were capable of continuing to emit light in the dark for prolonged time periods that could reach 1.5 h. Lanthanide-doped aluminium strontium oxide (LASO) nanoparticles at different ratios were immobilized in polystyrene (PS) and developed as a nanocomposite coating for wood substrates. To produce transparency in the prepared nanocomposite coating, LASO was efficiently dispersed in the form of nanoscaled particles to ensure homogeneous dispersion without agglomeration in the PS matrix. The coated wood showed an absorption band at 374 nm and two emission bands at 434 nm and 518 nm. The luminescence spectra showed both long-persisting phosphorescence as well as photochromic fluorescence relying on the LASO ratio. The improved superhydrophobicity and resistance to scratching of the coated wood could be attributed to the LASO NPs incorporated in the polystyrene matrix. Compared with the uncoated wood substrate, the coated LASO-PS nanocomposite film also displayed photostability and high durability. The current study demonstrated the potential high-scale manufacturing of smart wood for some applications such as safety directional signs in buildings, household products, and smart windows.
一种智能光致发光纳米复合表面涂层被制备用于简单的工业生产长余辉和超疏水木材。光致发光纳米复合涂层能够在黑暗中持续发光很长时间,最长可达 1.5 小时。将不同比例的掺镧铝锶氧化物(LASO)纳米粒子固定在聚苯乙烯(PS)中,并开发为木材基底的纳米复合材料涂层。为了在制备的纳米复合材料涂层中产生透明度,LASO 以纳米级颗粒的形式有效地分散,以确保在 PS 基质中均匀分散而不会团聚。涂覆的木材在 374nm 处显示出吸收带,在 434nm 和 518nm 处显示出两个发射带。发光光谱显示,LASO 比例的长余辉磷光和光致变色荧光都依赖于 LASO 比例。掺入聚苯乙烯基质中的 LASO NPs 提高了涂覆木材的超疏水性和抗划伤性。与未涂覆的木材基底相比,涂覆的 LASO-PS 纳米复合薄膜还显示出光稳定性和高耐久性。本研究展示了智能木材在某些应用中的大规模制造潜力,例如建筑物中的安全方向标志、家居产品和智能窗户。