Kuzman Sanja, Periša Jovana, Đorđević Vesna, Zeković Ivana, Vukoje Ivana, Antić Željka, Dramićanin Miroslav D
VINČA Institute of Nuclear Sciences-National Institute of the Republic of Serbia, University of Belgrade, 11000 Belgrade, Serbia.
Materials (Basel). 2020 Jul 10;13(14):3071. doi: 10.3390/ma13143071.
A promising way to improve the performance of luminescent materials is to combine them with noble metal nanoparticles. Herein, a set of silver/europium-doped lanthanum orthophosphate (Ag/LaEuPO) nanostructures with different concentrations of silver nanoparticles were prepared and investigated. The presented overlap between the strongest europium (Eu) excitation line and the broad silver nanoparticle surface plasmon resonance makes the combination prospective for coupling. X-ray powder diffraction confirmed the monoclinic monazite structure. The transmission electron microscopy revealed particles with a rod-like shape and ~4 aspect ratio. Photoluminescence spectra show characteristic Eu ion red emission. One of the requirements for an enhanced luminescence effect is the precise control of the distance between the noble metal nanoparticles and the emitter ion. The distance is indirectly varied throughout the change of Ag nanoparticle concentration in the LaEuPO host. The emission intensity increases with the increase in Ag nanoparticles up to 0.6 mol %, after which the luminescence decreases due to the nanoparticles' close packing and aggregation leading to the displacement of LaEuPO from the vicinity of the metal particles and reabsorption of the emitted light. The emission intensity of LaEuPO increases more than three times when the Eu excitation is supported by the localized surface plasmon resonance in the Ag/LaEuPO nanostructures.
提高发光材料性能的一种有前景的方法是将它们与贵金属纳米颗粒相结合。在此,制备并研究了一组具有不同银纳米颗粒浓度的银/铕掺杂的磷酸镧(Ag/LaEuPO)纳米结构。最强的铕(Eu)激发线与宽银纳米颗粒表面等离子体共振之间的重叠使得这种组合在耦合方面具有前景。X射线粉末衍射证实了单斜独居石结构。透射电子显微镜显示颗粒呈棒状,纵横比约为4。光致发光光谱显示出特征性的Eu离子红色发射。增强发光效果的一个要求是精确控制贵金属纳米颗粒与发射离子之间的距离。该距离通过LaEuPO主体中Ag纳米颗粒浓度的变化而间接改变。发射强度随着Ag纳米颗粒增加至0.6 mol%而增加,在此之后发光降低,这是由于纳米颗粒的紧密堆积和聚集导致LaEuPO从金属颗粒附近位移以及发射光的再吸收。当Ag/LaEuPO纳米结构中的局域表面等离子体共振支持Eu激发时,LaEuPO的发射强度增加超过三倍。