Lee, J.-H., Jang, J., Choi, J., Moon, S. H., Noh, S., Kim, J., … Cheon, J. (2011). Exchange-coupled magnetic nanoparticles for efficient heat induction. Nature Nanotechnology, 6(7), 418-422. doi:10.1038/nnano.2011.95
Hauser, A. K., Wydra, R. J., Stocke, N. A., Anderson, K. W., & Hilt, J. Z. (2015). Magnetic nanoparticles and nanocomposites for remote controlled therapies. Journal of Controlled Release, 219, 76-94. doi:10.1016/j.jconrel.2015.09.039
González, B., Ruiz-Hernández, E., Feito, M. J., López de Laorden, C., Arcos, D., Ramírez-Santillán, C., … Vallet-Regí, M. (2011). Covalently bonded dendrimer-maghemite nanosystems: nonviral vectors for in vitro gene magnetofection. Journal of Materials Chemistry, 21(12), 4598. doi:10.1039/c0jm03526b
[+]
Lee, J.-H., Jang, J., Choi, J., Moon, S. H., Noh, S., Kim, J., … Cheon, J. (2011). Exchange-coupled magnetic nanoparticles for efficient heat induction. Nature Nanotechnology, 6(7), 418-422. doi:10.1038/nnano.2011.95
Hauser, A. K., Wydra, R. J., Stocke, N. A., Anderson, K. W., & Hilt, J. Z. (2015). Magnetic nanoparticles and nanocomposites for remote controlled therapies. Journal of Controlled Release, 219, 76-94. doi:10.1016/j.jconrel.2015.09.039
González, B., Ruiz-Hernández, E., Feito, M. J., López de Laorden, C., Arcos, D., Ramírez-Santillán, C., … Vallet-Regí, M. (2011). Covalently bonded dendrimer-maghemite nanosystems: nonviral vectors for in vitro gene magnetofection. Journal of Materials Chemistry, 21(12), 4598. doi:10.1039/c0jm03526b
Gallo, J., Long, N. J., & Aboagye, E. O. (2013). Magnetic nanoparticles as contrast agents in the diagnosis and treatment of cancer. Chemical Society Reviews, 42(19), 7816. doi:10.1039/c3cs60149h
Boyer, C., Whittaker, M. R., Bulmus, V., Liu, J., & Davis, T. P. (2010). The design and utility of polymer-stabilized iron-oxide nanoparticles for nanomedicine applications. NPG Asia Materials, 2(1), 23-30. doi:10.1038/asiamat.2010.6
Wáng, Y. X. J., & Idée, J.-M. (2017). A comprehensive literatures update of clinical researches of superparamagnetic resonance iron oxide nanoparticles for magnetic resonance imaging. Quantitative Imaging in Medicine and Surgery, 7(1), 88-122. doi:10.21037/qims.2017.02.09
Blanco-Andujar, C., Walter, A., Cotin, G., Bordeianu, C., Mertz, D., Felder-Flesch, D., & Begin-Colin, S. (2016). Design of iron oxide-based nanoparticles for MRI and magnetic hyperthermia. Nanomedicine, 11(14), 1889-1910. doi:10.2217/nnm-2016-5001
Shin, T.-H., Choi, Y., Kim, S., & Cheon, J. (2015). Recent advances in magnetic nanoparticle-based multi-modal imaging. Chemical Society Reviews, 44(14), 4501-4516. doi:10.1039/c4cs00345d
Busquets, M. A., Estelrich, J., & Sánchez-Martín, M. J. (2015). Nanoparticles in magnetic resonance imaging: from simple to dual contrast agents. International Journal of Nanomedicine, 1727. doi:10.2147/ijn.s76501
Lee, N., & Hyeon, T. (2012). Designed synthesis of uniformly sized iron oxide nanoparticles for efficient magnetic resonance imaging contrast agents. Chem. Soc. Rev., 41(7), 2575-2589. doi:10.1039/c1cs15248c
Wang, G., Zhang, X., Skallberg, A., Liu, Y., Hu, Z., Mei, X., & Uvdal, K. (2014). One-step synthesis of water-dispersible ultra-small Fe3O4 nanoparticles as contrast agents for T1 and T2 magnetic resonance imaging. Nanoscale, 6(5), 2953. doi:10.1039/c3nr05550g
Kim, B. H., Lee, N., Kim, H., An, K., Park, Y. I., Choi, Y., … Hyeon, T. (2011). Large-Scale Synthesis of Uniform and Extremely Small-Sized Iron Oxide Nanoparticles for High-ResolutionT1Magnetic Resonance Imaging Contrast Agents. Journal of the American Chemical Society, 133(32), 12624-12631. doi:10.1021/ja203340u
Negussie, A. H., Yarmolenko, P. S., Partanen, A., Ranjan, A., Jacobs, G., Woods, D., … Dreher, M. R. (2011). Formulation and characterisation of magnetic resonance imageable thermally sensitive liposomes for use with magnetic resonance-guided high intensity focused ultrasound. International Journal of Hyperthermia, 27(2), 140-155. doi:10.3109/02656736.2010.528140
Hervault, A., & Thanh, N. T. K. (2014). Magnetic nanoparticle-based therapeutic agents for thermo-chemotherapy treatment of cancer. Nanoscale, 6(20), 11553-11573. doi:10.1039/c4nr03482a
Kumar, C. S. S. R., & Mohammad, F. (2011). Magnetic nanomaterials for hyperthermia-based therapy and controlled drug delivery. Advanced Drug Delivery Reviews, 63(9), 789-808. doi:10.1016/j.addr.2011.03.008
Deatsch, A. E., & Evans, B. A. (2014). Heating efficiency in magnetic nanoparticle hyperthermia. Journal of Magnetism and Magnetic Materials, 354, 163-172. doi:10.1016/j.jmmm.2013.11.006
Zhang, J., Li, X., Rosenholm, J. M., & Gu, H. (2011). Synthesis and characterization of pore size-tunable magnetic mesoporous silica nanoparticles. Journal of Colloid and Interface Science, 361(1), 16-24. doi:10.1016/j.jcis.2011.05.038
COROT, C., ROBERT, P., IDEE, J., & PORT, M. (2006). Recent advances in iron oxide nanocrystal technology for medical imaging☆. Advanced Drug Delivery Reviews, 58(14), 1471-1504. doi:10.1016/j.addr.2006.09.013
Gonzales, M., Mitsumori, L. M., Kushleika, J. V., Rosenfeld, M. E., & Krishnan, K. M. (2010). Cytotoxicity of iron oxide nanoparticles made from the thermal decomposition of organometallics and aqueous phase transfer with Pluronic F127. Contrast Media & Molecular Imaging, 5(5), 286-293. doi:10.1002/cmmi.391
Laurent, S., Forge, D., Port, M., Roch, A., Robic, C., Vander Elst, L., & Muller, R. N. (2008). Magnetic Iron Oxide Nanoparticles: Synthesis, Stabilization, Vectorization, Physicochemical Characterizations, and Biological Applications. Chemical Reviews, 108(6), 2064-2110. doi:10.1021/cr068445e
Kiss, L. B., Söderlund, J., Niklasson, G. A., & Granqvist, C. G. (1999). New approach to the origin of lognormal size distributions of nanoparticles. Nanotechnology, 10(1), 25-28. doi:10.1088/0957-4484/10/1/006
De Palma, R., Peeters, S., Van Bael, M. J., Van den Rul, H., Bonroy, K., Laureyn, W., … Maes, G. (2007). Silane Ligand Exchange to Make Hydrophobic Superparamagnetic Nanoparticles Water-Dispersible. Chemistry of Materials, 19(7), 1821-1831. doi:10.1021/cm0628000
Roonasi, P., & Holmgren, A. (2009). A Fourier transform infrared (FTIR) and thermogravimetric analysis (TGA) study of oleate adsorbed on magnetite nano-particle surface. Applied Surface Science, 255(11), 5891-5895. doi:10.1016/j.apsusc.2009.01.031
Yan, K., Li, H., Wang, X., Yi, C., Zhang, Q., Xu, Z., … Whittaker, A. K. (2014). Self-assembled magnetic luminescent hybrid micelles containing rare earth Eu for dual-modality MR and optical imaging. J. Mater. Chem. B, 2(5), 546-555. doi:10.1039/c3tb21381a
Garland, E. R., Rosen, E. P., Clarke, L. I., & Baer, T. (2008). Structure of submonolayer oleic acid coverages on inorganic aerosol particles: evidence of island formation. Physical Chemistry Chemical Physics, 10(21), 3156. doi:10.1039/b718013f
Smolensky, E. D., Park, H.-Y. E., Zhou, Y., Rolla, G. A., Marjańska, M., Botta, M., & Pierre, V. C. (2013). Scaling laws at the nanosize: the effect of particle size and shape on the magnetism and relaxivity of iron oxide nanoparticle contrast agents. Journal of Materials Chemistry B, 1(22), 2818. doi:10.1039/c3tb00369h
Kodama, R. . (1999). Magnetic nanoparticles. Journal of Magnetism and Magnetic Materials, 200(1-3), 359-372. doi:10.1016/s0304-8853(99)00347-9
Bean, C. P., & Livingston, J. D. (1959). Superparamagnetism. Journal of Applied Physics, 30(4), S120-S129. doi:10.1063/1.2185850
Li, Q., Kartikowati, C. W., Horie, S., Ogi, T., Iwaki, T., & Okuyama, K. (2017). Correlation between particle size/domain structure and magnetic properties of highly crystalline Fe3O4 nanoparticles. Scientific Reports, 7(1). doi:10.1038/s41598-017-09897-5
Roca, A. G., Morales, M. P., O’Grady, K., & Serna, C. J. (2006). Structural and magnetic properties of uniform magnetite nanoparticles prepared by high temperature decomposition of organic precursors. Nanotechnology, 17(11), 2783-2788. doi:10.1088/0957-4484/17/11/010
Coey, J. M. D. (1971). Noncollinear Spin Arrangement in Ultrafine Ferrimagnetic Crystallites. Physical Review Letters, 27(17), 1140-1142. doi:10.1103/physrevlett.27.1140
Linderoth, S., Hendriksen, P. V., Bo/dker, F., Wells, S., Davies, K., Charles, S. W., & Mo/rup, S. (1994). On spin‐canting in maghemite particles. Journal of Applied Physics, 75(10), 6583-6585. doi:10.1063/1.356902
Daou, T. J., Grenèche, J. M., Pourroy, G., Buathong, S., Derory, A., Ulhaq-Bouillet, C., … Begin-Colin, S. (2008). Coupling Agent Effect on Magnetic Properties of Functionalized Magnetite-Based Nanoparticles. Chemistry of Materials, 20(18), 5869-5875. doi:10.1021/cm801405n
Serna, C. J., Bødker, F., Mørup, S., Morales, M. P., Sandiumenge, F., & Veintemillas-Verdaguer, S. (2001). Spin frustration in maghemite nanoparticles. Solid State Communications, 118(9), 437-440. doi:10.1016/s0038-1098(01)00150-8
Laurent, S., Dutz, S., Häfeli, U. O., & Mahmoudi, M. (2011). Magnetic fluid hyperthermia: Focus on superparamagnetic iron oxide nanoparticles. Advances in Colloid and Interface Science, 166(1-2), 8-23. doi:10.1016/j.cis.2011.04.003
N. T. Thanh , Magnetic Nanoparticles From Fabrication to Clinical Applications , CRC Press , Boca Raton , 2012
Hergt, R., & Dutz, S. (2007). Magnetic particle hyperthermia—biophysical limitations of a visionary tumour therapy. Journal of Magnetism and Magnetic Materials, 311(1), 187-192. doi:10.1016/j.jmmm.2006.10.1156
Dong-Hyun Kim, Thai, Y. T., Nikles, D. E., & Brazel, C. S. (2009). Heating of Aqueous Dispersions Containing ${\hbox{MnFe}}_{2}{\hbox{O}}_{4}$ Nanoparticles by Radio-Frequency Magnetic Field Induction. IEEE Transactions on Magnetics, 45(1), 64-70. doi:10.1109/tmag.2008.2005329
Rosensweig, R. E. (2002). Heating magnetic fluid with alternating magnetic field. Journal of Magnetism and Magnetic Materials, 252, 370-374. doi:10.1016/s0304-8853(02)00706-0
D. Ortega and Q. A.Pankhurst , in Nanoscience: Volume 1: Nanostructures through Chemistry , ed. P. O'Brien , The Royal Society of Chemistry , Cambridge , 2013 , vol. 1 , pp. 60–88
Wildeboer, R. R., Southern, P., & Pankhurst, Q. A. (2014). On the reliable measurement of specific absorption rates and intrinsic loss parameters in magnetic hyperthermia materials. Journal of Physics D: Applied Physics, 47(49), 495003. doi:10.1088/0022-3727/47/49/495003
Guibert, C., Dupuis, V., Peyre, V., & Fresnais, J. (2015). Hyperthermia of Magnetic Nanoparticles: Experimental Study of the Role of Aggregation. The Journal of Physical Chemistry C, 119(50), 28148-28154. doi:10.1021/acs.jpcc.5b07796
Henoumont, C., Laurent, S., & Vander Elst, L. (2009). How to perform accurate and reliable measurements of longitudinal and transverse relaxation times of MRI contrast media in aqueous solutions. Contrast Media & Molecular Imaging, 4(6), 312-321. doi:10.1002/cmmi.294
Biju, S., Gallo, J., Bañobre‐López, M., Manshian, B. B., Soenen, S. J., Himmelreich, U., … Parac‐Vogt, T. N. (2018). A Magnetic Chameleon: Biocompatible Lanthanide Fluoride Nanoparticles with Magnetic Field Dependent Tunable Contrast Properties as a Versatile Contrast Agent for Low to Ultrahigh Field MRI and Optical Imaging in Biological Window. Chemistry – A European Journal, 24(29), 7388-7397. doi:10.1002/chem.201800283
Rohrer, M., Bauer, H., Mintorovitch, J., Requardt, M., & Weinmann, H.-J. (2005). Comparison of Magnetic Properties of MRI Contrast Media Solutions at Different Magnetic Field Strengths. Investigative Radiology, 40(11), 715-724. doi:10.1097/01.rli.0000184756.66360.d3
Guldris, N., Argibay, B., Kolen’ko, Y. V., Carbó-Argibay, E., Sobrino, T., Campos, F., … Rivas, J. (2016). Influence of the separation procedure on the properties of magnetic nanoparticles: Gaining in vitro stability and T1–T2 magnetic resonance imaging performance. Journal of Colloid and Interface Science, 472, 229-236. doi:10.1016/j.jcis.2016.03.040
Hu, F., & Zhao, Y. S. (2012). Inorganic nanoparticle-based T1 and T1/T2 magnetic resonance contrast probes. Nanoscale, 4(20), 6235. doi:10.1039/c2nr31865b
Daldrup-Link, H. E. (2017). Ten Things You Might Not Know about Iron Oxide Nanoparticles. Radiology, 284(3), 616-629. doi:10.1148/radiol.2017162759
Hu, F., Jia, Q., Li, Y., & Gao, M. (2011). Facile synthesis of ultrasmall PEGylated iron oxide nanoparticles for dual-contrastT1- andT2-weighted magnetic resonance imaging. Nanotechnology, 22(24), 245604. doi:10.1088/0957-4484/22/24/245604
Tegafaw, T., Xu, W., Ahmad, M. W., Baeck, J. S., Chang, Y., Bae, J. E., … Lee, G. H. (2015). Dual-modeT1andT2magnetic resonance imaging contrast agent based on ultrasmall mixed gadolinium-dysprosium oxide nanoparticles: synthesis, characterization, andin vivoapplication. Nanotechnology, 26(36), 365102. doi:10.1088/0957-4484/26/36/365102
Im, G. H., Kim, S. M., Lee, D.-G., Lee, W. J., Lee, J. H., & Lee, I. S. (2013). Fe3O4/MnO hybrid nanocrystals as a dual contrast agent for both T1- and T2-weighted liver MRI. Biomaterials, 34(8), 2069-2076. doi:10.1016/j.biomaterials.2012.11.054
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