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

机译:化学气相沉积法在碳纳米管上制备碳包裹钴纳米粒子及其性能

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摘要

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 thestructure 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 thestructure 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 butalso 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@Cnanoparticles and enhancement of its ferromagnetic properties, which make this system promising as a magnetic material, particularly for high-density magnetic recording applications.
机译:使用Co纳米粒子作为催化剂,通过化学气相沉积法合成具有可调结构的碳包埋钴(Co @ C)纳米粒子,并将其负载在水溶性基质(氯化钠)上,该基质易于通过洗涤和离心去除。系统地研究了生长温度和时间对Co @ C纳米粒子结构和磁性的影响。对于不同的生长温度,磁性Co纳米粒子被不同类型的碳层封装,包括非晶碳层,石墨层和碳纳米纤维。这推断出碳包封的金属纳米颗粒的结构与生长温度之间的密切关系。在400°C的固定生长温度下,延长的生长时间导致碳层厚度增加。磁性表征表明,所获得的Co @ C纳米颗粒的磁性不仅取决于石墨化,而且取决于所包封的碳层的厚度,其易于通过生长温度和时间来控制。合成工艺的优化使合成的Co @ Cnano粒子具有相对较高的矫顽力,并增强了其铁磁性能,这使该系统有望成为一种磁性材料,特别是在高密度磁记录应用中。

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