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A facile solution-phase approach to the synthesis of luminescent europium methacrylate nanowires and their thermal conversion into europium oxide nanotubes. | LitMetric

A facile solution-phase approach to the synthesis of luminescent europium methacrylate nanowires and their thermal conversion into europium oxide nanotubes.

Nanotechnology

State Key Lab of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun 130012, People's Republic of China.

Published: February 2008

AI Article Synopsis

  • Novel one-dimensional nanostructures of europium methacrylate were created without any additional chemicals, resulting in hexagonal nanowires measuring 100-300 nm in diameter and tens to hundreds of micrometers in length.
  • Characterization techniques like NMR, FTIR, and TGA showed the precursor powder and the nanowires have the same chemical composition, with the nanowires exhibiting strong red fluorescence under UV light.
  • The nanowires can be converted into Eu(2)O(3) nanotubes through calcination, which retains a cubic body-centered structure, confirmed by X-ray analysis, with detailed mechanisms provided for this transformation.

Article Abstract

Novel one-dimensional (1D) nanostructures of rare earth complexes (europium methacrylate (Eu(MA)(3))) have been prepared from the precursor of irregularly shaped Eu(MA)(3) powder in ethanol solvent without the assistance of an added surfactant, catalyst, or template. These hexagonal-shaped complex nanowires have diameters of about 100-300 nm and lengths ranging from tens to hundreds of micrometers. Nuclear magnetic resonance (NMR) spectroscopy, Fourier transform infrared (FTIR) studies and thermogravimetric analysis (TGA) show that the precursor powder and the resulting nanowires have identical compositions. Under UV light excitation, strong red fluorescence can be clearly seen throughout the whole wires. This good luminescence characteristic of the complex nanowires is further confirmed by the fluorescence spectrum where strong and narrow emission can be seen. These rare earth complex nanowires provide a useful source for 1D rare earth oxide materials, as the europium ions are distributed uniformly in the Eu(MA)(3) nanowires. Through calcination, the Eu(MA)(3) nanowires are successfully converted into Eu(2)O(3) nanotubes. X-ray investigation confirms that the Eu(2)O(3) nanotubes have a cubic body-centered structure. FTIR measurements and TGA analysis are used to follow the calcination process. A plausible mechanism responsible for the formation of Eu(2)O(3) nanotubes is presented.

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Source
http://dx.doi.org/10.1088/0957-4484/19/6/065607DOI Listing

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