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纳米管与封装纳米晶体的尺寸相关结构关系。

Size-Dependent Structure Relations between Nanotubes and Encapsulated Nanocrystals.

机构信息

University of Vienna , 1090 Vienna, Austria.

Kurnakov Institute of General and Inorganic Chemistry RAS , 119991 Moscow, Russia.

出版信息

Nano Lett. 2017 Feb 8;17(2):805-810. doi: 10.1021/acs.nanolett.6b04031. Epub 2017 Jan 18.

Abstract

The structural organization of compounds in a confined space of nanometer-scale cavities is of fundamental importance for understanding the basic principles for atomic structure design at the nanolevel. Here, we explore size-dependent structure relations between one-dimensional PbTe nanocrystals and carbon nanotube containers in the diameter range of 2.0-1.25 nm using high-resolution transmission electron microscopy and ab initio calculations. Upon decrease of the confining volume, one-dimensional crystals reveal gradual thinning, with the structure being cut from the bulk in either a <110> or a <100> growth direction until a certain limit of ∼1.3 nm. This corresponds to the situation when a stoichiometric (uncharged) crystal does not fit into the cavity dimensions. As a result of the in-tube charge compensation, one-dimensional superstructures with nanometer-scale atomic density modulations are formed by a periodic addition of peripheral extra atoms to the main motif. Structural changes in the crystallographic configuration of the composites entail the redistribution of charge density on single-walled carbon nanotube walls and the possible appearance of the electron density wave. The variation of the potential attains 0.4 eV, corresponding to charge density fluctuations of 0.14 e/atom.

摘要

在纳米级腔室的受限空间中,化合物的结构组织对于理解纳米级原子结构设计的基本原理至关重要。在这里,我们使用高分辨率透射电子显微镜和从头算计算,研究了一维 PbTe 纳米晶体和碳纳米管容器之间的尺寸相关结构关系,碳纳米管容器的直径范围为 2.0-1.25nm。随着约束体积的减小,一维晶体逐渐变薄,结构从块状体中以<110>或<100>生长方向切割,直到达到约 1.3nm 的某个极限。这对应于化学计量(不带电荷)晶体不适合腔室尺寸的情况。由于管内电荷补偿,通过向主图案周期性添加外围额外原子,形成具有纳米级原子密度调制的一维超结构。复合材料的晶体结构配置的变化需要在单壁碳纳米管壁上重新分配电荷密度,并可能出现电子密度波。电势的变化达到 0.4eV,对应于 0.14e/atom 的电荷密度波动。

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