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Items: 1 to 20 of 186

1.

Photoluminescent characterization of atomic diffusion in core-shell nanoparticles.

DiMaio J, Kokuoz B, James TL, Harkey T, Monofsky D, Ballato J.

Opt Express. 2008 Aug 4;16(16):11769-75.

PMID:
18679448
2.

Capillary-force-induced formation of luminescent polystyrene/(rare-earth-doped nanoparticle) hybrid hollow spheres.

Chen M, Xie L, Li F, Zhou S, Wu L.

ACS Appl Mater Interfaces. 2010 Oct;2(10):2733-7. doi: 10.1021/am100726w.

PMID:
20828167
3.

Controlling energy transfer between multiple dopants within a single nanoparticle.

DiMaio JR, Sabatier C, Kokuoz B, Ballato J.

Proc Natl Acad Sci U S A. 2008 Feb 12;105(6):1809-13. doi: 10.1073/pnas.0711638105. Epub 2008 Feb 4.

4.

Preparation and up-conversion luminescence of 8 nm rare-earth doped fluoride nanoparticles.

Tikhomirov VK, Mortier M, Gredin P, Patriarche G, Görller-Walrand C, Moshchalkov VV.

Opt Express. 2008 Sep 15;16(19):14544-9.

PMID:
18794989
5.

Refluxing synthesis, photoluminescence and binding ability to deoxyribonucleic acid of water-soluble rare earth ion-doped LaF3 nanoparticles.

Wang Z, Zhang Y, Li C, Zhang X, Chang J, Xie J, Li C.

J Nanosci Nanotechnol. 2014 Jun;14(6):4506-12.

PMID:
24738421
6.

Intramolecular energy transfer and co-luminescence effect in rare earth ions (La, Y, Gd and Tb) doped with Eu3+ beta-diketone complexes.

Li Y, Zhao Y.

J Fluoresc. 2009 Jul;19(4):641-7. doi: 10.1007/s10895-008-0456-5. Epub 2009 Jan 14.

PMID:
19142719
7.

Paradigms and challenges for bioapplication of rare earth upconversion luminescent nanoparticles: small size and tunable emission/excitation spectra.

Sun LD, Wang YF, Yan CH.

Acc Chem Res. 2014 Apr 15;47(4):1001-9. doi: 10.1021/ar400218t. Epub 2014 Jan 14.

PMID:
24422455
8.
9.

The investigation of photo-induced chemiluminescence on Co2+-doped TiO2 nanoparticles and its analytical application.

Li G, Nan H, Zheng X.

Analyst. 2009 Jul;134(7):1396-404. doi: 10.1039/b816226c. Epub 2009 Mar 25.

PMID:
19562208
10.

Effective spin Hamiltonian model for superexchange interaction between rare earth ions in rare earth elpasolite crystals.

Zhou X, Xia S, Tanner PA.

J Phys Chem B. 2007 Aug 2;111(30):8677-9. Epub 2007 Jul 7.

PMID:
17616222
11.

Anti-Stokes luminescence cooling of Tm3+ doped BaY2F8.

Patterson W, Bigotta S, Sheik-Bahae M, Parisi D, Tonelli M, Epstein R.

Opt Express. 2008 Feb 4;16(3):1704-10.

PMID:
18542249
12.

Prevalence of anisotropic shell growth in rare earth core-shell upconversion nanocrystals.

Zhang C, Lee JY.

ACS Nano. 2013 May 28;7(5):4393-402. doi: 10.1021/nn4009214. Epub 2013 Apr 15.

PMID:
23570424
13.

Multinuclear solid-state NMR spectroscopy of doped lanthanum fluoride nanoparticles.

Lo AY, Sudarsan V, Sivakumar S, van Veggel F, Schurko RW.

J Am Chem Soc. 2007 Apr 18;129(15):4687-700. Epub 2007 Mar 27.

PMID:
17385858
14.

Optimization of Pr3+, Tb3+, and Sm3+ co-doped (Y0.65Gd0.35)BO3:Eu0.05(3+) VUV phosphors through combinatorial approach.

Chen L, Fu Y, Zhang G, Bao J, Gao C.

J Comb Chem. 2008 May-Jun;10(3):401-4. doi: 10.1021/cc700172e. Epub 2008 Mar 13.

PMID:
18336007
15.

High-resolution fluorescence diffuse optical tomography developed with nonlinear upconverting nanoparticles.

Xu CT, Svenmarker P, Liu H, Wu X, Messing ME, Wallenberg LR, Andersson-Engels S.

ACS Nano. 2012 Jun 26;6(6):4788-95. doi: 10.1021/nn3015807. Epub 2012 Jun 4.

PMID:
22568960
16.

Rare-earth doped gadolinia based phosphors for potential multicolor and white light emitting deep UV LEDs.

Bedekar V, Dutta DP, Mohapatra M, Godbole SV, Ghildiyal R, Tyagi AK.

Nanotechnology. 2009 Mar 25;20(12):125707. doi: 10.1088/0957-4484/20/12/125707. Epub 2009 Mar 4.

PMID:
19420484
19.
20.

Ru(bpy)(3) covalently doped silica nanoparticles as multicenter tunable structures for electrochemiluminescence amplification.

Zanarini S, Rampazzo E, Ciana LD, Marcaccio M, Marzocchi E, Montalti M, Paolucci F, Prodi L.

J Am Chem Soc. 2009 Feb 18;131(6):2260-7. doi: 10.1021/ja8077158.

PMID:
19161304

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