Large-Scale Synthesis of Colloidal Fe3O4 Nanoparticles Exhibiting High Heating Efficiency in Magnetic Hyperthermia

被引:236
|
作者
Kolen'ko, Yury V. [1 ]
Banobre-Lopez, Manuel [1 ]
Rodriguez-Abreu, Carlos [1 ]
Carbo-Argibay, Enrique [1 ]
Sailsman, Alexandra [2 ]
Pineiro-Redondo, Yolanda [3 ]
Fatima Cerqueira, M. [4 ]
Petrovykh, Dmitri Y. [1 ]
Kovnir, Kirill [5 ]
Lebedev, Oleg I. [6 ]
Rivas, Jose [1 ]
机构
[1] Int Iberian Nanotechnol Lab, P-4715330 Braga, Portugal
[2] MIT, Dept Mat Sci & Engn, Cambridge, MA 02139 USA
[3] Univ Santiago de Compostela, Dept Appl Phys, Santiago De Compostela 15782, Spain
[4] Univ Minho, Ctr Phys, P-4710057 Braga, Portugal
[5] Univ Calif Davis, Dept Chem, Davis, CA 95616 USA
[6] CNRS ENSICAEN, UMR 6508, CRISMAT, F-14050 Caen, France
关键词
IRON-OXIDE NANOPARTICLES; NANOCRYSTALS; XPS; SURFACE; WATER; FUNCTIONALIZATION; FE3O4-GAMMA-FE2O3; NANOCOMPOSITES; SPECTROSCOPY; STABILITY;
D O I
10.1021/jp500816u
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Exceptional magnetic properties of magnetite, Fe3O4, nanoparticles make them one of the most intensively studied inorganic nanomaterials for biomedical applications. We report successful gram-scale syntheses, via hydrothermal route or controlled coprecipitation in an automated reactor, of colloidal Fe3O4 nanoparticles with sizes of 12.9 +/- 5.9, 17.9 +/- 4.4, and 19.8 +/- 3.2 nm. To investigate structure-property relationships as a function of the synthetic procedure, we used multiple techniques to characterize the structure, phase composition, and magnetic behavior of these nanoparticles. For the iron oxide cores of these nanoparticles, powder X-ray diffraction and electron microscopy both confirm single-phase Fe3O4 composition. In addition to the core composition, the magnetic performance of nanoparticles in the 13-20 nm size range can be strongly influenced by the surface properties, which we analyzed by three complementary techniques. Raman scattering and X-ray photoelectron spectroscopy (XPS) measurements indicate overoxidation of nanoparticle surfaces, while transmission electron microscopy (TEM) shows no distinct core-shell structure. Considered together, Raman, XPS, and TEM observations suggest that our nanoparticles have a gradually varying nonstoichiometric Fe3O4+delta composition, which could be attributed to the formation of Fe3O4-gamma-Fe2O3 solid solutions at their outermost surface. Detailed analyses by TEM reveal that the hydrothermally produced samples include single-domain nanocrystals coexisting with defective twinned and dimer nanoparticles, which form as a result of oriented-attachment crystal growth. All our nanoparticles exhibit superparamagnetic-like behavior with a characteristic blocking temperature above room temperature. We attribute the estimated saturation magnetization values up to 84.01 +/- 0.25 emu/g at 300 K to the relatively large size of the nanoparticles (13-20 nm) coupled with the syntheses under elevated temperature; alternative explanations, such as surface-mediated effects, are not supported by our spectroscopy or microscopy measurements. For these colloids, the heating efficiency in magnetic hyperthermia correlates with their saturation magnetization, making them appealing for therapeutic and other biomedical applications that rely on high-performance nanoparticle-mediated hyperthermia.
引用
收藏
页码:8691 / 8701
页数:11
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