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首页> 外文期刊>Journal of nanoscience and nanotechnology >AC electric field-induced alignment and long-range assembly of multi-wall carbon nanotubes inside aqueous media
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AC electric field-induced alignment and long-range assembly of multi-wall carbon nanotubes inside aqueous media

机译:交流电场诱导的水性介质中多壁碳纳米管的排列和远距离组装

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摘要

The present work examines the behavior of multiwall carbon nanotubes (MWCNT) inside AC electric fields created by three-dimensional electrodes. The response of carbon nanotubes stably suspended in water with the aid of a nonionic surfactant is monitored by combining microscopic observations with on-line measurements of the suspension resistivity. It is found that polarization effects induced by the externally applied AC electric field on MWCNTs can cause their unidirectional orientation and end-to-end contact that result in formations of spatially distributed, long-range, three-dimensional and electrically conducting structures that span the entire gap between the electrodes. The length of the formed structures, which in the present case was approximately 30 times larger than that of an individual carbon nanotube, can be controlled by adjusting the spacing between the electrodes. The influence of main experimental parameters, namely, MWCNT concentration, applied voltage, AC field frequency, and electrode surface topography on the suspension behavior is experimentally examined. Results are demonstrated for applied voltage values, AC field frequencies, and carbon nanotube concentrations in the range 4-40 V-ptp, 10 Hz-5 MHz, and 0.001-2.0 wt%, respectively. While higher electric field strengths accelerate the formation of aligned structures, higher frequency values were found to result in suspensions that exhibit smaller electrical resistivity. Carbon nanotube dispersions exposed to an AC electric field exhibit a 100-fold or more decrease in their electrical resistivity, even when carbon nanotube concentrations as low as 0.005 wt% are used.
机译:本工作检查了三维电极在AC电场内的多壁碳纳米管(MWCNT)的行为。借助非离子表面活性剂将碳纳米管稳定悬浮在水中,可以通过将显微镜观察结果与悬浮电阻率的在线测量值结合起来进行监测。已发现,外部施加的交流电场在MWCNT上引起的极化效应会导致它们的单向取向和端对端接触,从而导致形成横跨整个碳纳米管的空间分布,长距离,三维和导电结构。电极之间的整个间隙。形成的结构的长度在当前情况下是单个碳纳米管的长度的约30倍,可以通过调节电极之间的间距来控制。实验研究了主要实验参数,即MWCNT浓度,施加电压,AC场频率和电极表面形貌对悬浮行为的影响。结果表明,施加电压值,交流场频和碳纳米管浓度分别在4-40 V-ptp,10 Hz-5 MHz和0.001-2.0 wt%之间。尽管较高的电场强度会加速排列结构的形成,但发现较高的频率值会导致悬浮液显示出较小的电阻率。即使当使用低至0.005重量%的碳纳米管浓度时,暴露于AC电场的碳纳米管分散体的电阻率也会降低100倍或更多。

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