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Strong magnetic field-assisted growth of carbon nanofibers and its microstructural transformation mechanism

机译:碳纳米纤维的强磁场辅助生长及其微观结构转变机理

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摘要

It is well-known that electric and magnetic fields can control the growth direction, morphology and microstructure of one-dimensional carbon nanomaterials (1-DCNMs), which plays a key role for its potential applications in micro-nano-electrics and devices. In this paper, we introduce a novel process for controlling growth of carbon nanofibers (CNFs) with assistance of a strong magnetic field (up to 0.5 T in the center) in a chemical vapor deposition (CVD) system. The results reveal that: 1) The CNFs get bundled when grown in the presence of a strong magnetic field and slightly get aligned parallel to the direction of the magnetic field; 2) The CNFs diameter become narrowed and homogenized with increase of the magnetic field; 3) With the increase of the magnetic field, the microstructure of CNFs is gradually changed, i.e., the strong magnetic field makes the disordered “solid-cored” CNFs transform into a kind of bamboo-liked carbon nanotubes; 4) We propose a mechanism that the reason for these variations and transformation is due to diamagnetic property of carbon atoms, so that it has direction selectivity in the precipitation process.
机译:众所周知,电场和磁场可以控制一维碳纳米材料(1-DCNM)的生长方向,形态和微观结构,这对于其在微纳米电子和器件中的潜在应用起着关键作用。在本文中,我们介绍了一种在化学气相沉积(CVD)系统中借助于强磁场(中心最高0.5 T)来控制碳纳米纤维(CNF)生长的新方法。结果表明:1)CNF在强磁场中生长时会发生束缚,并且略微平行于磁场方向排列; 2)随着磁场的增大,CNF的直径变窄且均匀。 3)随着磁场强度的增加,CNFs的微观结构逐渐发生变化,即强磁场使无序的“固芯” CNFs转变为一种类似竹子的碳纳米管。 4)我们提出了一种机制,这些变化和相变的原因是由于碳原子的抗磁性,因此在沉淀过程中具有方向选择性。

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