| Literature DB >> 29483519 |
Vasilina V Rocheva1, Anastasia V Koroleva2,3, Alexander G Savelyev1,3, Kirill V Khaydukov1, Alla N Generalova1,4, Andrey V Nechaev1,5, Anna E Guller3,6, Vladimir A Semchishen1, Boris N Chichkov1,2,7, Evgeny V Khaydukov8,9,10.
Abstract
Three-dimensional (3D) rapid prototyping technology based on near-infrared light-induced polymerization of photocurable compositions containing upconversion nanomaterials has been explored. For this aim, the rationally-designed core/shell upconversion nanoparticles NaYF4:Yb3+,Tm3+/NaYF4, with the distinct ultraviolet-emitting lines and unprecedentedly high near-infrared to ultraviolet conversion efficiency of [Formula: see text] have been used. The upconverted ultraviolet photons were capable to efficiently activate photoinitiators contained in light-sensitive resins under moderate intensities of NIR excitation below 10 W cm-2 and induce generation of radicals and photopolymerization in situ. Near infrared-activated polymerization process, both at the millimeter and sub-micron scales, was investigated. Polymeric macro- and microstructures were fabricated by means of near infrared laser scanning photolithography in the volume of liquid photocurable compositions with focused laser light at 975 nm wavelength. Examination of the polymerization process in the vicinity of the nanoparticles shows strong differences in the rate of polymer shell growth on flat and edge nanoparticle sides. This phenomenon mainly defines the resolution of the demonstrated near infrared - ultraviolet 3D printing technology at the micrometer scale level.Entities:
Year: 2018 PMID: 29483519 PMCID: PMC5832145 DOI: 10.1038/s41598-018-21793-0
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Characterization of the synthesized UCNPs. (a) SEM and (b) high-angle annular dark-field (HAADF) scanning TEM images of β-NaYF4: Yb3+,Tm3+/NaYF4 core/shell nanoparticles. (c) Spectra of the UCNPs in chloroform irradiated with 975-nm laser light with the intensity of 3.5, 7 and 11 W cm−2. (d) Integral conversion efficiency of UCNPs versus the excitation intensity at 975 nm measured using the calibrated integrating sphere setup. The saturation was reached at ∼20 W cm−2. The magenta line is provided as a guide to the eye.
Figure 2(a) Overlap of the absorption spectra of photoinitiators Irgacure 368 and Darocure TPO in acetonitrile[37] and the emission spectrum of the UCNPs β-NaYF4:Yb3+,Tm3+/NaYF4 under NIR excitation at 975 nm at intensity 15 W cm−2 (shown by grey peaks). (b) Luminescent voxel formation in 10 mm × 10 mm cuvette containing light-sensitive resin impregnated with UCNPs under CW NIR light illumination at 15 W cm−2 intensity.
Figure 3(a) The experimental setup for fabrication of 3D polymeric structures in PCC containing UCNPs under NIR irradiation and (b) its scheme. (c) Top-view image of a structure produced by NIR triggered 3D photopolymerization, (d) a 3D structure obtained via NIR-triggered photopolymerization after developing and (e) its anti-Stokes luminescence under 975 nm excitation.
Figure 4SEM images of 3D polymer microstructures obtained by NIR-light-activated photopolymerization in a thin layer.
Figure 5Morphology of photopolymerized PCC around UCNPs under 975 nm irradiation: (a) Formation of rice-like structures around single UCNPs; and (b) star-shaped clots around UCNP clusters.
Figure 6Concentration threshold nature of nanoparticle-induced photopolymerization for 3D structure formation. (a) SEM image of rice-like structures. (b,c) Formation of geometrically connected phase in PCC matrix. Red ellipsoid objects determine the spatially connected phase in the matrix. Grey ellipsoids are objects without binding.
Figure 7Formation of polymeric microbeads in a photosensitive composition containing UCNPs with the concentration of 0.15 mg ml−1 which is below the threshold value.