Scalable Direct Writing of Lanthanide-Doped KMnF<sub>3</sub> Perovskite Nanowires into Aligned Arrays with Polarized Up-Conversion Emission.
basic_science · Level V
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- Record sourced from PubMed, PMID 29653053.
- Also identified by DOI 10.1021/acs.nanolett.8b00396.
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Abstract
The use of one-dimensional nano- and microstructured semiconductor and lanthanide materials is attractive for polarized-light-emission studies. Up-conversion emission from single-nanorod or anisotropic nanoparticles with a degree of polarization has also been discussed. However, microscale arrays of nanoparticles, especially well-aligned one-dimensional nanostructures as well as their up-conversion polarization characterization, have not been investigated yet. Herein, we present a novel and facile paradigm for preparing highly aligned arrays of lanthanide-doped KMnF<sub>3</sub> (KMnF<sub>3</sub>:Ln) perovskite nanowires, which are good candidates for polarized up-conversion emission studies. These perovskite nanowires, with a width of 10 nm and length of a few micrometers, are formed through the oriented attachment of KMnF<sub>3</sub>:Ln nanocubes along the [001] direction. By the employment of KMnF<sub>3</sub>:Ln nanowire gel as nanoink, a direct-writing method is developed to obtain diverse types of aligned patterns from the nanoscale to the wafer scale. Up-conversion emissions from the highly aligned nanowire arrays are polarized along the array direction with a polarization degree up to 60%. Taking advantage of microscopic nanowire arrays, these polarized up-conversion emissions should offer potential applications in light or information transportation.