School of Chemical and Biomedical Engineering, Nanyang Technological University, Singapore 637459, Singapore.
Anal Chim Acta. 2011 Dec 5;708(1-2):28-36. doi: 10.1016/j.aca.2011.09.041. Epub 2011 Oct 6.
Current synthesis methods for producing single walled carbon nanotubes (SWCNTs) do not ensure uniformity of the structure and properties, in particular the length, which is an important quality indicator of SWCNTs. As a result, sorting SWCNTs by length is an important post-synthesis processing step. For this purpose, convenient analysis methods are needed to characterize the length distribution rapidly and accurately. In this study, density gradient ultracentrifugation was applied to prepare length-sorted SWCNT suspensions containing individualized surfactant-wrapped SWCNTs. The length of sorted SWCNTs was first determined by atomic force microscope (AFM), and their absorbance was measured in ultraviolet-visible near-infrared (UV-vis-NIR) spectroscopy. Chemometric methods are used to calibrate the spectra against the AFM-measured length distribution. The calibration model enables convenient analysis of the length distribution of SWCNTs through UV-vis-NIR spectroscopy. Various chemometric techniques are investigated, including pre-processing methods and non-linear calibration models. Extended inverted signal correction, extended multiplicative signal correction and Gaussian process regression are found to provide good prediction of the length distribution of SWCNTs with satisfactory agreement with the AFM measurements. In summary, spectroscopy in conjunction with advanced chemometric techniques is a powerful analytical tool for carbon nanotube research.
目前生产单壁碳纳米管(SWCNTs)的合成方法不能确保结构和性能的均匀性,特别是长度,这是 SWCNTs 的一个重要质量指标。因此,对 SWCNTs 进行长度排序是合成后的一个重要处理步骤。为此,需要方便的分析方法来快速准确地表征长度分布。在这项研究中,采用密度梯度超速离心法制备了含有单个表面活性剂包裹的 SWCNTs 的长度分级 SWCNT 悬浮液。首先通过原子力显微镜(AFM)确定分级 SWCNTs 的长度,并在紫外-可见近红外(UV-vis-NIR)光谱中测量其吸光度。化学计量学方法用于根据 AFM 测量的长度分布对光谱进行校准。校准模型通过 UV-vis-NIR 光谱方便地分析 SWCNTs 的长度分布。研究了各种化学计量学技术,包括预处理方法和非线性校准模型。扩展的逆信号校正、扩展的乘法信号校正和高斯过程回归被发现可以很好地预测 SWCNTs 的长度分布,与 AFM 测量结果具有很好的一致性。总之,光谱学结合先进的化学计量学技术是碳纳米管研究的有力分析工具。