| Literature DB >> 28211891 |
Pawan Kumar1,2, Satbir Singh1,2, V N Singh3, Nidhi Singh4, R K Gupta5, Bipin Kumar Gupta1.
Abstract
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 Y1.94O3:Ho3+0.02/Yb3+0.04 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.Entities:
Year: 2017 PMID: 28211891 PMCID: PMC5304174 DOI: 10.1038/srep42515
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) XRD pattern of Y1.94O3: Ho3+0.02/Yb3+0.04 nanorod bundles. (b) SEM image of Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundles. (c) The magnified view of SEM image nanorod bundles and inset exhibits the further magnified view of red marked region in (c). (d) TEM image of nanorod bundle taken from selected area. (e) TEM micrograph of individual nanorod and inset shows the HRTEM of nanorod. (f) PL emission spectrum of Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundles at excitation wavelength of 980 nm and inset demonstrates CIE colour coordinates for green emission. (g) PL emission spectrum of Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundles at excitation wavelength of 449 nm and inset demonstrates CIE colour coordinates of green emission. (h) PL excitation spectrum of Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundles at emission wavelength of 549 nm. (i) TRPL decay profile of nanorod bundles recorded at room temperature while monitoring emission at 549 nm, at an excitation of 449 nm and inset shows the exponential fitting of the decay profile.
Figure 2(a) Fluorescent image of Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundles at excitation wavelength of 980 nm. (b) PL mapping image of nanorod bundles at excitation wavelength of 980 nm at same location from where the fluorescent image was taken. (c) PL mapping image of two nanorod bundles at two different places with different profile heights, insets show the PL intensity distribution at different positions.
Figure 3(a) Optical image of isolated horizontal positioned single Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle and inset shows fluorescent image of isolated horizontally positioned single Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle at excitation wavelength of 980 nm. (b) PL mapping image of isolated horizontally positioned single Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle. (c) PL intensity distribution along the length of nanorod bundle from one end to other end of nanorod bundle (A to B). (d–f) PL intensity distribution along the diameter of isolated bundle at three different selected positions; left, middle and right sides (A to B), respectively.
Figure 4(a) PL mapping of slanted positioned Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle. (b) PL mapping along the length of slant positioned Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle, inset shows the intensity distribution from position A to B. (c) PL mapping along the diameter of slant positioned Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle, inset shows the intensity distribution from position A to B. (d) PL mapping vertically positioned Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle. (e) PL mapping along the length of vertically positioned Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle, inset shows the intensity distribution from position A to B. (f) PL mapping along the diameter of vertically positioned Y1.94O3:Ho3+0.02/Yb3+0.04 nanorod bundle, inset shows the intensity distribution from position A to B.