Szabados Márton, Mészáros Rebeka, Dobó Dorina Gabriella, Kónya Zoltán, Kukovecz Ákos, Sipos Pál
Materials and Solution Structure Research Group, Interdisciplinary Excellence Centre, Institute of Chemistry, University of Szeged, Aradi Vértanúk Tere 1, H-6720 Szeged, Hungary.
Department of Molecular and Analytical Chemistry, University of Szeged, Dóm Tér 7-8, H-6720 Szeged, Hungary.
Nanomaterials (Basel). 2024 Sep 2;14(17):1436. doi: 10.3390/nano14171436.
Using a co-precipitation technique, the anionic form of sulisobenzone (benzophenone-4) sunscreen ingredient was incorporated into the interlayer space of CaFe-hydrocalumite for the first time. Using detailed post-synthetic millings of the photoprotective nanocomposite obtained, we aimed to study the mechanochemical effects on complex, hybridized layered double hydroxides (LDHs). Various physicochemical properties of the ground and the intact LDHs were compared by powder X-ray diffractometry, N adsorption-desorption, UV-Vis diffuse reflectance, infrared and Raman spectroscopy, scanning electron microscopy and thermogravimetric measurements. The data showed significant structural and morphological deformations, surface and textural changes and multifarious thermal behavior. The most interesting development was the change in the optical properties of organic LDHs; the milling significantly improved the UV light blocking ability, especially around 320 nm. Spectroscopic results verified that this could be explained by a modification in interaction between the LDH layers and the sulisobenzone anions, through modulated π-π conjugation and light absorption of benzene rings. In addition to the vibrating mill often used in the laboratory, the photoprotection reinforcement can also be induced by the drum mill grinding system commonly applied in industry.
采用共沉淀技术,首次将阴离子形式的舒利苯酮(二苯甲酮 - 4)防晒成分引入到钙铁水滑石的层间空间。通过对所得光防护纳米复合材料进行详细的合成后研磨,我们旨在研究其对复杂的、杂化的层状双氢氧化物(LDHs)的机械化学效应。通过粉末X射线衍射、N吸附 - 脱附、紫外 - 可见漫反射、红外和拉曼光谱、扫描电子显微镜和热重测量等方法,对研磨后的和完整的LDHs的各种物理化学性质进行了比较。数据显示出显著的结构和形态变形、表面和纹理变化以及多样的热行为。最有趣的进展是有机LDHs光学性质的变化;研磨显著提高了紫外线阻挡能力,尤其是在320 nm左右。光谱结果证实,这可以通过LDH层与舒利苯酮阴离子之间相互作用的改变来解释,这种改变是通过调节苯环的π - π共轭和光吸收实现的。除了实验室常用的振动磨外,工业上常用的滚筒磨研磨系统也能诱导光防护增强。