Shaver Jonah, Parra-Vasquez A Nicholas G, Hansel Stefan, Portugall Oliver, Mielke Charles H, von Ortenberg Michael, Hauge Robert H, Pasquali Matteo, Kono Junichiro
Department of Electrical and Computer Engineering, Rice University, Houston, Texas 77005, USA.
ACS Nano. 2009 Jan 27;3(1):131-8. doi: 10.1021/nn800519n.
We have measured the dynamic alignment properties of single-walled carbon nanotube (SWNT) suspensions in pulsed high magnetic fields through linear dichroism spectroscopy. Millisecond-duration pulsed high magnetic fields up to 56 T as well as microsecond-duration pulsed ultrahigh magnetic fields up to 166 T were used. Because of their anisotropic magnetic properties, SWNTs align in an applied magnetic field, and because of their anisotropic optical properties, aligned SWNTs show linear dichroism. The characteristics of their overall alignment depend on several factors, including the viscosity and temperature of the suspending solvent, the degree of anisotropy of nanotube magnetic susceptibilities, the nanotube length distribution, the degree of nanotube bundling, and the strength and duration of the applied magnetic field. To explain our data, we have developed a theoretical model based on the Smoluchowski equation for rigid rods that accurately reproduces the salient features of the experimental data.
我们通过线性二色光谱法测量了单壁碳纳米管(SWNT)悬浮液在脉冲高磁场中的动态排列特性。使用了高达56 T的持续时间为毫秒级的脉冲高磁场以及高达166 T的持续时间为微秒级的脉冲超高磁场。由于其各向异性的磁特性,单壁碳纳米管在施加的磁场中会排列,并且由于其各向异性的光学特性,排列好的单壁碳纳米管会表现出线性二色性。它们整体排列的特性取决于几个因素,包括悬浮溶剂的粘度和温度、纳米管磁化率的各向异性程度、纳米管长度分布、纳米管束状化程度以及施加磁场的强度和持续时间。为了解释我们的数据,我们基于刚性棒的斯莫卢霍夫斯基方程开发了一个理论模型,该模型能准确再现实验数据的显著特征。