International Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba, Ibaraki 305-0044, Japan; Shenyang National Laboratory for Materials Science (SYNL), Institute of Metal Research (IMR), Chinese Academy of Sciences (CAS), 72 Wenhua Road, Shenyang 110016, China.
National University of Science and Technology MISiS, 4 Leninskiy prospekt, Moscow 119049, Russian Federation; Emanuel Institute of Biochemical Physics, 4 Kosigina Street, Moscow 119334, Russian Federation.
Ultramicroscopy. 2018 Nov;194:108-116. doi: 10.1016/j.ultramic.2018.07.012. Epub 2018 Jul 30.
Physical properties of carbon nanotubes (CNTs) are closely related to the atomic structure, i.e. the chirality. It is highly desirable to develop a technique to modify their chirality and control the resultant transport properties. Herein, we present an in situ transmission electron microscopy (TEM) probing method to monitor the chirality transition and transport properties of individual few-walled CNTs. The changes of tube structure including the chirality are stimulated by programmed bias pulses and associated Joule heating. The chirality change of each shell is analyzed by nanobeam electron diffraction. Supported by molecular dynamics simulations, a preferred chirality transition path is identified, consistent with the Stone-Wales defect formation and dislocation sliding mechanism. The electronic transport properties are measured along with the structural changes, via fabricating transistors using the individual nanotubes as the suspended channels. Metal-to-semiconductor transitions are observed along with the chirality changes as confirmed by both the electron diffraction and electrical measurements. Apart from providing an alternative route to control the chirality of CNTs, the present work demonstrates the rare possibility of obtaining the dynamic structure-properties relationships at the atomic and molecular levels.
碳纳米管(CNTs)的物理性质与其原子结构(即手性)密切相关。因此,开发一种能够改变其手性并控制其传输性能的技术是非常理想的。在此,我们提出了一种原位透射电子显微镜(TEM)探测方法,用于监测单个少壁 CNT 的手性转变和传输性能。通过编程的偏置脉冲和相关的焦耳加热来刺激管结构(包括手性)的变化。通过纳米束电子衍射分析每个壳层的手性变化。通过分子动力学模拟的支持,确定了一种首选的手性转变路径,与 Stone-Wales 缺陷形成和位错滑动机制一致。通过使用单个纳米管作为悬置通道制造晶体管,在结构变化的同时测量电子传输特性。通过电子衍射和电测量证实了金属-半导体转变与手性变化一致。除了提供控制 CNT 手性的另一种途径外,本工作还展示了在原子和分子水平上获得动态结构-性能关系的罕见可能性。