COBALT FERRITE/GRAPHENE OXIDE NANOCOMPOSITE: SYNTHESIS, MAGNETIC PROPERTIES AND MAGNETIC INDUCTIVE HEATING CHARACTERISTIC | Nam | TNU Journal of Science and Technology

COBALT FERRITE/GRAPHENE OXIDE NANOCOMPOSITE: SYNTHESIS, MAGNETIC PROPERTIES AND MAGNETIC INDUCTIVE HEATING CHARACTERISTIC

About this article

Received: 04/06/21                Revised: 29/06/21                Published: 02/07/21

Authors

1. Pham Hong Nam Email to author, Institute of Materials Science – VAST
2. Nguyen Hoai Nam, Institute of Materials Science – VAST
3. Man Hoai Nam, Institute of Materials Science – VAST
4. Bui Hung Thang, Institute of Materials Science – VAST
5. Le Anh Tuan, Phenikaa University
6. Vu Dinh Lam, Graduate University of Science and Technology – VAST

Abstract


In this paper, we report the synthesis of CoFe2O4/GO nanocomposite by co-precipitation method with the assistant of microwave  irradiation. CoFe2O4 nanoparticles after synthesis appeared on the surface of GO. The surface morphologies and structures of the CoFe2O4/GO nanocomposite were investigated by powder X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), Fourier transform infrared spectroscopy (FTIR). Mass percent of elements, magnetic properties were investigated and evaluated by energy dispersive X-ray spectroscopy (EDX), vibrating sample magnetometer (VSM). The value saturation magnetization  (Ms) of CoFe2O4/GO nanocomposite at 36.2 emu/g. The ability heat of liquid containing of CoFe2O4/GO nanocomposite with a concentration of 1 mg/ml is performed at a magnetic field strength of 100-250 Oe, frequency of  290 kHz. The two parameters of temperature and specific absorption rate (SAR) receive the value of 47.6oC and 50.2 W/g. These two parameters are in good agreement with the requirements of thermotherapy for cancer treatment.

Keywords


CoFe2O4 nanoparticle; Graphene oxide (GO); CoFe2O4/GO nanocomposite; Magnetic inductive heating; Cancer treatment

References


[1] A. Jordan, R. Scholz, P. Wust, H. Schirra, T. Schiestel, H. Schmidt, and R. Felix, “Endocytosis of dextran and silan-coated magnetite nanoparticles and the effect of intracellular hyperthermia on human mammary carcinoma cells in vitro,” J. Magn. Magn. Mater., vol. 194, pp. 185-196, 1999.

[2] A. Jordan, R. Scholz, P. Wust, H. Schirra,T. Schiestel, H. Schmidt, and R. Felix, “Magnetic fluid hyperthermia (MFH): Cancer treatment with AC magnetic field induced excitation of biocompatible superparamagnetic nanoparticle,” J. Magn. Magn. Mater., vol. 201, pp. 413-419, 1999.

[3] Z. Nemati, J. Alonso, I. Rodrigo, R. Das, E. Garaio, A. J. García, I. Orue, M. P. Huong, and H. Srikanth, “Improving the Heating Efficiency of Iron Oxide Nanoparticles by Tuning Their Shape and Size,” J. Phys. Chem C, vol. 122, pp. 2367-2381, 2018.

[4] S. H. Noh, W. Na, J. T. Jang, J. H. Lee, E. J. Lee, S. H. Moon, Y. Lim, J. S. Shin, and J. Cheon, “Nanoscale Magnetism Control via Surface and Exchange Anisotropy for Optimized Ferrimagnetic Hysteresis,” Nano Lett, vol. 12, pp. 3716-3721, 2012.

[5] S. D. Bader, “Colloquium: Opportunities in nanomagnetism,” Rev. Mod. Phys, vol. 78, pp. 1-15, 2006.

[6] D. Zhao, X. Wu, H. Guan, and E. Han, “Study on supercritical hydrothermal synthesis of CoFe2O4 nanoparticles,” J. Supercrit. Fluids, vol. 42, pp. 226-233, 2007.

[7] Y. Zhang, Y. Liu, Z. Yang, R. Xiong, and J. Shi, “Synthesis of CoFe2O4 nanoparticles with tunable magnetism by the modified hydrothermal method,” J. Nanopart. Res, vol. 13, p. 4557, 2011.

[8] X. Yang, X. Zhang, Z. Liu, Y. Ma, Y. Huang, and Y. Chen, “High-efficiency loading and controlled release of doxorubicin hydrochloride on graphene oxide,” J. Phys. Chem. C, vol. 112, no. 45, pp. 17554-17558, 2008.

[9] Z. Wang, C. Zhou, J. Xia, B. Via, Y. Xia, and F. Zhang, “Fabrication and characterization of a triple functionalization of graphene oxide with Fe3O4, folic acid and doxorubicin as dual-targeted drug nanocarrier,” Colloids. Surf: B and Biointerfaces, vol. 106, pp. 60-65, 2013.

[10] A. Amira, S. Venkatesh, B. M. Nitin, S. Jasmin, A. Mram, K. M. Niveen, and C. J. F. M. Pedro, “Cobalt ferrite supported on reduced graphene oxide as a T2 contrast agent for magnetic resonance imaging,” RSC Adv, vol. 9, pp. 6299-6309, 2019.

[11] G. S. Wang, G. Y. Chen, Z. Y. Wei, X. F. Dong, and M. Qi, “Multifunctional Fe3O4/graphene oxide nanocomposites for magnetic resonance imaging and drug delivery,” Mater. Chem. Phys, vol. 141, pp. 997-1004, 2013.

[12] B. J. Park, K. H. Choi, K. C. Nam, A. Ali, J. E. Min, H. Son, H. S. Uhm, H. J. Kim, J. S.
Jung, and E. H. Choi, “Photodynamic anticancer activities of multifunctional cobalt ferrite nanoparticles in various cancer cells,” J. Biomed. Nanotechnol, vol. 11, pp. 226-235, 2015.

[13] H. Shadie, A. M. Mohammad, G. A. Mohammad, Z. I. Azam, S. Reza, P. Benyamin, O. A. Mohammad, and S. Saeed, “Graphene/cobalt nanocarrier for hyperthermia therapy and MRI diagnosis,” Colloids. Surf: B and Biointerfaces, vol. 146, pp. 271-279, 2016.

[14] W. S. Hummers and R. E. Offeman, “Preparation of Graphitic Oxide,” J. Am. Chem. Soc, vol. 80, p. 1339, 1958.

[15] D. H. Manh, P. T. Phong, P. H. Nam, D. K. Tung, N. X. Phuc, and In-Ja Lee, “Structural and magnetic study of La0.7Sr0.3MnO3 nanoparticles and AC magnetic heating characteristics for hyperthermia applications,” Phys B, vol. 444, pp. 94-102, 2014.

[16] T. Rida, A. Othmane, E. Younes, D. Karim, R. Abdallah, and Z. Mohamed, “Magnetic CoFe2O4 nanoparticles supported on graphene oxide (CoFe2O4/GO) with high catalytic activity for peroxymonosulfate activation and degradation of rhodamine B,” RSC Adv, vol. 8, p. 1351, 2018.

[17] M. Liu, T. Wen,X. Wu, C. Chen, J. Hu, J. Li, and X. Wang, “Synthesis of porous Fe3O4 hollow microspheres/graphene oxide composite for Cr(vi) removal,” Dalton. Trans, vol. 42, pp. 14710-14717, 2013.

[18] W. Guangshuo, M. Yingying, W. Zhiyong, and Q. Min, “Development of multifunctional cobalt ferrite/graphene oxide nanocomposites for magnetic resonance imaging and controlled drug
delivery,” Chem. Eng. J, vol. 289, pp. 150-160, 2016.

[19] S. Chang, Q. Zhang, Y. Lu, S. Wu, and W. Wang, “High-efficiency and selective adsorption of organic pollutants by magnetic CoFe2O4/graphene oxide adsorbents: Experimental and molecular dynamics simulation study,” Separ. Purifi. Techn, vol. 238, p. 116400, 2020.

[20] Suriyanto, E. Y. K. Ng, and S. D. Kumar, “Physical mechanism and modeling of heat generation and transfer in magnetic fluid hyperthermia through Néelian and Brownian relaxation: a review,” BioMedical. Engin. OnLine, vol. 36, pp. 1-22, 2017.[21] M. Angelakeris, “Magnetic nanoparticles: A multifunctional vehicle for modern theranostics,” Biochim. Biophys. Acta, vol. 1861, no. 6, pp. 1642-1651, 2017.




DOI: https://doi.org/10.34238/tnu-jst.4598

Refbacks

  • There are currently no refbacks.
TNU Journal of Science and Technology
Rooms 408, 409 - Administration Building - Thai Nguyen University
Tan Thinh Ward - Thai Nguyen City
Phone: (+84) 208 3840 288 - E-mail: jst@tnu.edu.vn
Based on Open Journal Systems
©2018 All Rights Reserved