Erkens Maksiem, Levshov Dmitry, Wenseleers Wim, Li Han, Flavel Benjamin S, Fagan Jeffrey A, Popov Valentin N, Avramenko Marina, Forel Salomé, Flahaut Emmanuel, Cambré Sofie
Nanostructured and Organic Optical and Electronic Materials, Department of Physics, University of Antwerp, B-2610 Antwerp, Belgium.
Institute of Nanotechnology, Karlsruhe Institute of Technology, 76344 Eggenstein-Leopoldshafen, Germany.
ACS Nano. 2022 Oct 25;16(10):16038-16053. doi: 10.1021/acsnano.2c03883. Epub 2022 Sep 27.
The coaxial stacking of two single-wall carbon nanotubes (SWCNTs) into a double-wall carbon nanotube (DWCNT), forming a so-called one-dimensional van der Waals structure, leads to synergetic effects that dramatically affect the optical and electronic properties of both layers. In this work, we explore these effects in purified DWCNT samples by combining absorption, wavelength-dependent infrared fluorescence-excitation (PLE), and wavelength-dependent resonant Raman scattering (RRS) spectroscopy. Purified DWCNTs are obtained by careful solubilization that strictly avoids ultrasonication or by electronic-type sorting, both followed by a density gradient ultracentrifugation to remove unwanted SWCNTs that could obscure the DWCNT characterization. Chirality-dependent shifts of the radial breathing mode vibrational frequencies and transition energies of the inner and outer DWCNT walls with respect to their SWCNT analogues are determined by advanced two-dimensional fitting of RRS and PLE data of DWCNT and their reference SWCNT samples. This exhaustive data set verifies that fluorescence from the inner DWCNT walls of well-purified samples is severely quenched through efficient energy transfer from the inner to the outer DWCNT walls. Combined analysis of the PLE and RRS results further reveals that this transfer is dependent on the inner and outer wall chirality, and we identify the specific combinations dominant in our DWCNT samples. These obtained results demonstrate the necessity and value of a combined structural characterization approach including PLE and RRS spectroscopy for bulk DWCNT samples.
将两根单壁碳纳米管(SWCNT)同轴堆叠成双层碳纳米管(DWCNT),形成所谓的一维范德华结构,会产生协同效应,极大地影响两层的光学和电学性质。在这项工作中,我们通过结合吸收光谱、波长依赖型红外荧光激发(PLE)光谱和波长依赖型共振拉曼散射(RRS)光谱,对纯化的DWCNT样品中的这些效应进行了探究。纯化的DWCNT通过严格避免超声处理的精细溶解法或电子型分选法获得,之后都进行密度梯度超速离心,以去除可能会干扰DWCNT表征的不需要的SWCNT。通过对DWCNT及其参考SWCNT样品的RRS和PLE数据进行先进的二维拟合,确定了DWCNT内外壁相对于其SWCNT类似物的径向呼吸模式振动频率和跃迁能量的手性依赖性位移。这个详尽的数据集证实,经过良好纯化样品的DWCNT内壁荧光通过从内壁到外壁的高效能量转移而被严重淬灭。对PLE和RRS结果的综合分析进一步表明,这种转移取决于内壁和外壁的手性,并且我们确定了在我们的DWCNT样品中占主导的特定组合。这些结果证明了包括PLE和RRS光谱在内的组合结构表征方法对于大量DWCNT样品的必要性和价值。