| Literature DB >> 27086735 |
Zefeng Wang1, Weiwei Ye1, Xinran Luo1, Zhonggang Wang1.
Abstract
The motivation of this work is to create luminescent rare earth/polymer films with outEntities:
Year: 2016 PMID: 27086735 PMCID: PMC5263856 DOI: 10.1038/srep24682
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Chemical structures and synthesis routes to core polymer particle, carboxyl-containing core-shell polymer particle, and rare earth-coordinated polymer particle.
Figure 2FE-SEM images for core polymer particles (a), carboxyl-containing core-shell polymer particles (b), rare earth-coordinated polymer particles (c), and HR-TEM image for rare earth-coordinated polymer particles (d).
Figure 3FE-SEM image of PTFE-Tb3+ film with the weight ratios of PTFE to Nano-Eu3+ of 5:1.
Figure 4EDX spectrum (top) and mapping images (bottom) for PTFE-Tb3+ film.
Figure 5Variation of water contact angles with measuring time for the neat Nano-Eu3+ film and the PFFE-Eu3+ film with weight ratio of PTFE to Nano-Eu3+ of 5:1.
Figure 6Dependency of static water contact angles for PFFE-Eu3+ films on the weight ratios of PTFE to Nano-Eu3+ for PFFE- Eu3+ film with the weight ratio of PTFE to Nano-Eu3+ of 5:1.
Figure 7(a) Illustration of a water droplet rolling on the tilted surface at about 6°, and (b) images of PTFE-Eu3+ and Nano-Eu3+ films submersed in water.
Figure 8Fluorescence emission spectra of PTFE-Eu3+ and PTFE-Tb3+ films (insets are the luminescent images of films under the UV lamp at 365 nm).
Figure 9Images of fluorescence microscopy for PTFE-Eu3+ and PTFE-Tb3+ films.
Figure 10Fluorescence emission spectra of PTFE-Eu3+ films after submersed in water for different time.