» Articles » PMID: 27677303

Fabrication and Properties of Carbon-Encapsulated Cobalt Nanoparticles over NaCl by CVD

Overview
Publisher Springer
Specialty Biotechnology
Date 2016 Sep 29
PMID 27677303
Citations 4
Authors
Affiliations
Soon will be listed here.
Abstract

Carbon-encapsulated cobalt (Co@C) nanoparticles, with a tunable structure, were synthesized by chemical vapor deposition using Co nanoparticles as the catalyst and supported on a water-soluble substrate (sodium chloride), which was easily removed by washing and centrifugation. The influences of growth temperature and time on the structure and magnetic properties of the Co@C nanoparticles were systematically investigated. For different growth temperatures, the magnetic Co nanoparticles were encapsulated by different types of carbon layers, including amorphous carbon layers, graphitic layers, and carbon nanofibers. This inferred a close relationship between the structure of the carbon-encapsulated metal nanoparticles and the growth temperature. At a fixed growth temperature of 400 °C, prolonged growth time caused an increase in thickness of the carbon layers. The magnetic characterization indicated that the magnetic properties of the obtained Co@C nanoparticles depend not only on the graphitization but also on the thickness of the encapsulated carbon layer, which were easily controlled by the growth temperatures and times. Optimization of the synthesis process allowed achieving relatively high coercivity of the synthesized Co@C nanoparticles and enhancement of its ferromagnetic properties, which make this system promising as a magnetic material, particularly for high-density magnetic recording applications.

Citing Articles

Green biologically synthesized metal nanoparticles: biological applications, optimizations and future prospects.

Morgan R, Aboshanab K Future Sci OA. 2024; 10(1):FSO935.

PMID: 38817383 PMC: 11137799. DOI: 10.2144/fsoa-2023-0196.


Single-step synthesis of eucalyptus sawdust magnetic activated carbon and its adsorption behavior for methylene blue.

Chen C, Mi S, Lao D, Shi P, Tong Z, Li Z RSC Adv. 2022; 9(39):22248-22262.

PMID: 35528050 PMC: 9073348. DOI: 10.1039/c9ra03490k.


Synthesis and Characterization of Flower-like Carbon-encapsulated Fe-C Nanoparticles for Application as Adsorbing Material.

Zhao L, Dai X, Li B, Wang H, Li H, Liang C Materials (Basel). 2019; 12(5).

PMID: 30870977 PMC: 6427276. DOI: 10.3390/ma12050829.


Ferromagnetically filled carbon nano-onions: the key role of sulfur in dimensional, structural and electric control.

Medranda D, Borowiec J, Zhang X, Wang S, Yan K, Zhang J R Soc Open Sci. 2018; 5(1):170981.

PMID: 29410810 PMC: 5792887. DOI: 10.1098/rsos.170981.

References
1.
Sosnovik D, Nahrendorf M, Weissleder R . Magnetic nanoparticles for MR imaging: agents, techniques and cardiovascular applications. Basic Res Cardiol. 2008; 103(2):122-30. PMC: 2597271. DOI: 10.1007/s00395-008-0710-7. View

2.
Liu W, Zhong W, Du Y . Magnetic nanoparticles with core/shell structures. J Nanosci Nanotechnol. 2008; 8(6):2781-92. View

3.
Ugarte , CHATELAIN , de Heer WA . Nanocapillarity and Chemistry in Carbon Nanotubes. Science. 1996; 274(5294):1897-9. DOI: 10.1126/science.274.5294.1897. View

4.
Zhi L, Gorelik T, Friedlein R, Wu J, Kolb U, Salaneck W . Solid-state pyrolyses of metal phthalocyanines: a simple approach towards nitrogen-doped CNTs and metal/carbon nanocables. Small. 2006; 1(8-9):798-801. DOI: 10.1002/smll.200500150. View

5.
Steigerwalt E, Lukehart C . Preparation of graphitic carbon nanofibers with the use of water-soluble supports. J Nanosci Nanotechnol. 2003; 2(1):25-8. DOI: 10.1166/jnn.2002.081. View