Luminescent Materials and Devices Group, Materials Physics and Engineering Division, CSIR- National Physical Laboratory, Dr. K. S. Krishnan Road, New Delhi, 110012, India.
Academy of Scientific and Innovative Research (AcSIR), CSIR-National Physical Laboratory Campus. Dr. K. S. Krishnan Road, New Delhi 110012, India.
Sci Rep. 2017 Feb 13;7:42515. doi: 10.1038/srep42515.
A novel method for demonstration of photoluminescence intensity distribution in upconverting nanorod bundles using confocal microscopy is reported. Herein, a strategy for the synthesis of highly luminescent dual mode upconverting/downshift YO:Ho/Yb nanorod bundles by a facile hydrothermal route has been introduced. These luminescent nanorod bundles exhibit strong green emission at 549 nm upon excitations at 449 nm and 980 nm with quantum efficiencies of ~6.3% and ~1.1%, respectively. The TEM/HRTEM results confirm that these bundles are composed of several individual nanorods with diameter of ~100 nm and length in the range of 1-3 μm. Furthermore, two dimensional spatially resolved photoluminescence intensity distribution study has been carried out using confocal photoluminescence microscope throughout the nanorod bundles. This study provides a new direction for the potential use of such emerging dual mode nanorod bundles as photon sources for next generation flat panel optical display devices, bio-medical applications, luminescent security ink and enhanced energy harvesting in photovoltaic applications.
本文报道了一种利用共聚焦显微镜演示上转换纳米棒束中光致发光强度分布的新方法。在此,介绍了一种通过简便的水热法合成高发光双模上转换/下转换 YO:Ho/Yb 纳米棒束的策略。这些发光纳米棒束在 449nm 和 980nm 的激发下分别表现出 549nm 处的强绿光发射,量子效率分别约为 6.3%和 1.1%。TEM/HRTEM 结果证实,这些束由几个直径约为 100nm、长度在 1-3μm 范围内的单个纳米棒组成。此外,还使用共聚焦荧光显微镜对整个纳米棒束进行了二维空间分辨光致发光强度分布研究。这项研究为这种新兴的双模纳米棒束作为下一代平板光显示器件、生物医学应用、发光安全油墨和光伏应用中增强能量收集的光子源的潜在应用提供了新的方向。