Key Laboratory of Colloid and Interface Chemistry, Shandong University, Ministry of Education, Jinan, 250100, China.
College of Chemistry, Chemical Engineering and Materials Science, Shandong Normal University, Jinan, 250014, China.
Soft Matter. 2019 Jan 21;15(3):399-407. doi: 10.1039/c8sm02276c. Epub 2019 Jan 2.
Hybrid co-assembly of polyoxometalates (POMs) with cationic organic matrices offers a preferable way to greatly enhance POM functionality as well as processability. Thus, multi-stimulus responsive supramolecular materials based on lanthanide-containing POMs with improved luminescence may be fabricated from appropriate components through this convenient strategy. Herein, we reported that the co-assembly of Na(EuWO)·32HO (EuW) and a commercially available cationic surfactant, myristoylcholine chloride (Myr), in water could produce enhanced red-emitting luminescent aggregates, with their photophysical properties highly dependent on the molar ratio (R) between Myr and EuW. The R of 36 was finally selected owing to the displayed superior luminescence intensity and good aggregate stability. The Myr/EuW hybrids induced by electrostatic and hydrophobic forces presented practically as multilamellar spheres with diameters varying from 80 to 300 nm. Compared to an aqueous solution of EuW nanoclusters, a 12-fold increase in absolute luminescence quantum yield (∼23.3%) was observed for the hybrid spheres, which was ascribed to the efficient shielding of water molecules. An unusual aggregation arrangement mechanism and the excellent photophysical properties of these aggregates were thoroughly investigated. Both the enzyme substrate character of Myr and the sensitive coordination structure of EuW to the surrounding environment made Myr/EuW aggregates exhibit multi-stimulus responsiveness to enzymes, pH, and transition metal ions, thus providing potential applications in fluorescence sensing, targeted-release, and optoelectronics.
多酸化合物(POMs)与阳离子有机基质的杂化共组装提供了一种增强 POM 功能和加工性能的优选方法。因此,可以通过这种方便的策略,从适当的组分制备基于含镧 POM 的多刺激响应超分子材料,从而改善发光性能。在本文中,我们报道了 Na(EuWO)·32HO(EuW)和市售阳离子表面活性剂十四酰胆碱氯化物(Myr)在水中的共组装可以产生增强的红色发光聚集物,其光物理性质高度依赖于 Myr 和 EuW 的摩尔比(R)。最终选择 R 为 36,因为显示出优异的发光强度和良好的聚集稳定性。静电和疏水相互作用诱导的 Myr/EuW 杂化物呈现出实际的多层球体,直径从 80 纳米到 300 纳米不等。与 EuW 纳米团簇的水溶液相比,杂化球体的绝对发光量子产率(~23.3%)提高了 12 倍,这归因于水分子的有效屏蔽。彻底研究了这些聚集物的异常聚集排列机制和优异的光物理性质。Myr 的酶底物特性和 EuW 对周围环境的敏感配位结构使 Myr/EuW 聚集物对酶、pH 和过渡金属离子表现出多刺激响应,从而为荧光传感、靶向释放和光电应用提供了潜在应用。