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手性分选单壁碳纳米管内方酸菁染料分子的直径依赖性单排和双排堆积

Diameter-dependent single- and double-file stacking of squaraine dye molecules inside chirality-sorted single-wall carbon nanotubes.

作者信息

Forel Salomé, Li Han, van Bezouw Stein, Campo Jochen, Wieland Laura, Wenseleers Wim, Flavel Benjamin S, Cambré Sofie

机构信息

Nanostructured and Organic Optical and Electronic Materials, Physics Department, University of Antwerp, Belgium.

Université Claude Bernard Lyon 1, UMR CNRS 5615, Lyon, France.

出版信息

Nanoscale. 2022 Jun 16;14(23):8385-8397. doi: 10.1039/d2nr01630c.

Abstract

The filling of single-wall carbon nanotubes (SWCNTs) with dye molecules has become a novel path to add new functionalities through the mutual interaction of confined dyes and host SWCNTs. In particular cases, the encapsulated dye molecules form strongly interacting molecular arrays and these result in severely altered optical properties of the dye molecules. Here, we present the encapsulation of a squaraine dye inside semiconducting chirality-sorted SWCNTs with diameters ranging from ∼1.15 nm, in which the dye molecules can only be encapsulated in a single-file molecular arrangement, up to ∼1.5 nm, in which two or three molecular files can fit side-by-side. Through the chirality-selective observation of energy transfer from the dye molecules to the surrounding SWCNTs, we find that the absorption wavelength of the dye follows a peculiar SWCNT diameter dependence, originating from the specific stacking of the dye inside the host SWCNTs. Corroborated by a theoretical model, we find that for each SWCNT diameter, the dye molecules adopt a close packing geometry, resulting in tunable optical properties of the hybrid when selecting a specific SWCNT chirality.

摘要

将染料分子填充到单壁碳纳米管(SWCNT)中,已成为通过受限染料与主体SWCNT之间的相互作用来添加新功能的一条新途径。在特定情况下,被封装的染料分子会形成强相互作用的分子阵列,这会导致染料分子的光学性质发生严重改变。在此,我们展示了一种方酸菁染料在直径范围从约1.15纳米(其中染料分子只能以单列分子排列方式被封装)到约1.5纳米(其中可以并排放置两列或三列分子)的半导体手性分选SWCNT内部的封装情况。通过对手性选择性观察染料分子到周围SWCNT的能量转移,我们发现染料的吸收波长呈现出一种特殊的SWCNT直径依赖性,这源于染料在主体SWCNT内部的特定堆积方式。经理论模型证实,我们发现对于每个SWCNT直径,染料分子都采用紧密堆积几何结构,从而在选择特定的SWCNT手性时,使杂化物具有可调谐的光学性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c96e/9202598/28029402655a/d2nr01630c-f1.jpg

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