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Single-step synthesis of Er3+ and Yb3+ ions doped molybdate/Gd2O3 core-shell nanoparticles for biomedical imaging

  • Izabela Kamińska
  • , Danek Elbaum
  • , Bozena Sikora
  • , Przemysław Kowalik
  • , Jakub Mikulski
  • , Zofia Felcyn
  • , Piotr Samol
  • , Tomasz Wojciechowski
  • , Roman Minikayev
  • , Wojciech Paszkowicz
  • , Wojciech Zaleszczyk
  • , Maciej Szewczyk
  • , Anna Konopka
  • , Grzegorz Gruzeł
  • , Mirosława Pawlyta
  • , Mikołaj Donten
  • , Kamil Ciszak
  • , Karolina Zajdel
  • , Małgorzata Frontczak-Baniewicz
  • , Piotr Stȩpień
  • Mariusz Łapiński, Grzegorz Wilczyński, Krzysztof Fronc
  • Institute of Physics of the Polish Academy of Sciences
  • Instituto de Microelectrónica de Madrid
  • Adam Mickiewicz University in Poznań
  • International Research Centre MagTop
  • University of Warsaw
  • Macquarie University
  • Institute of Nuclear Physics PAN
  • Warsaw University of Technology
  • Nicolaus Copernicus University in Toruń
  • Polish Academy of Sciences
  • Institute of Biochemistry and Biophysics of the Polish Academy of Sciences
  • Military University of Technology Warsaw
  • Nencki Institute of Experimental Biology of the Polish Academy of Sciences

Research output: Contribution to journalArticlepeer-review

21 Citations (Scopus)

Abstract

Nanostructures as color-tunable luminescent markers have become major, promising tools for bioimaging and biosensing. In this paper separated molybdate/Gd2O3 doped rare earth ions (erbium, Er3+ and ytterbium, Yb3+) core-shell nanoparticles (NPs), were fabricated by a one-step homogeneous precipitation process. Emission properties were studied by cathodo- and photoluminescence. Scanning electron and transmission electron microscopes were used to visualize and determine the size and shape of the NPs. Spherical NPs were obtained. Their core-shell structures were confirmed by x-ray diffraction and energy-dispersive x-ray spectroscopy measurements. We postulated that the molybdate rich core is formed due to high segregation coefficient of the Mo ion during the precipitation. The calcination process resulted in crystallization of δ/ξ (core/shell) NP doped Er and Yb ions, where δ - gadolinium molybdates and ξ - molybdates or gadolinium oxide. We confirmed two different upconversion mechanisms. In the presence of molybdenum ions, in the core of the NPs, Yb3+- (|2F7/2, 3T2) dimers were formed. As a result of a two 980 nm photon absorption by the dimer, we observed enhanced green luminescence in the upconversion process. However, for the shell formed by the Gd2O3:Er, Yb NPs (without the Mo ions), the typical energy transfer upconversion takes place, which results in red luminescence. We demonstrated that the NPs were transported into cytosol of the HeLa and astrocytes cells by endocytosis. The core-shell NPs are sensitive sensors for the environment prevailing inside (shorter luminescence decay) and outside (longer luminescence decay) of the tested cells. The toxicity of the NPs was examined using MTT assay.

Original languageEnglish
Article number025702
JournalNanotechnology
Volume29
Issue number2
DOIs
Publication statusPublished - 1 Jan 2018

Keywords

  • GdO
  • HeLa cells
  • MTT
  • astrocytes
  • core-shell nanoparticles
  • molybdates
  • upconversion

ASJC Scopus subject areas

  • Bioengineering
  • General Chemistry
  • General Materials Science
  • Mechanics of Materials
  • Mechanical Engineering
  • Electrical and Electronic Engineering

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