Magnetic nanoparticles

Hilal Acidereli, Y. Karataş, Hakan Burhan, M. Gülcan, F. Sen
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引用次数: 627

Abstract

to the research team, this approach has the potential for mass delivery on an atom-by-atom basis for the tailored formation of a final prese- lected particle size, which has significant implications for nanoscale applications including the use of a nanotubes as a “nano-soldering iron.” The researchers have developed a quantitative model for the observed nanoscale mass transfer phenomenon, using the analogy of mass conveyor belts for the transport and mass reservoirs. Plots of mass versus time for various particles along a nanotube were shown to agree well with experimental data points. The mass change rates were found to be linear, indicating that surface energies, which change with particle size, do not play a significant role in driving the trans- port process down to at least the femtogram level. The exact nature of the driving mechanism, however, has yet to be determined. A comparison was made to indi- um electromigration toward the cathode on silicon surfaces. The study demon-strates that it is possible to precisely control mass transport at the nanoscale; this bodes well for future nanotechnology applications.
磁性纳米颗粒
对于研究小组来说,这种方法有可能在原子对原子的基础上进行大规模输送,从而形成最终的预定粒径,这对纳米级应用具有重要意义,包括使用纳米管作为“纳米烙铁”。研究人员已经建立了一个定量模型,用于观察到的纳米尺度的传质现象,将质量传送带类比为输送和质量储存库。不同粒子沿纳米管的质量随时间的变化曲线与实验数据一致。质量变化率被发现是线性的,这表明表面能随粒径的变化而变化,在驱动传输过程中至少在飞图水平上不起重要作用。然而,驱动机制的确切性质尚未确定。对铟在硅表面向阴极的电迁移进行了比较。研究表明,在纳米尺度上精确控制质量输运是可能的;这对未来纳米技术的应用来说是个好兆头。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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