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取向多壁碳纳米管的压电性能分析

Analysis of the Piezoelectric Properties of Aligned Multi-Walled Carbon Nanotubes.

作者信息

Il'ina Marina V, Il'in Oleg I, Rudyk Nikolay N, Osotova Olga I, Fedotov Alexander A, Ageev Oleg A

机构信息

Institute of Nanotechnologies, Electronics and Electronic Equipment Engineering, Southern Federal University, 347922 Taganrog, Russia.

Research Laboratory of Functional Nanomaterials Technology, Southern Federal University, 347922 Taganrog, Russia.

出版信息

Nanomaterials (Basel). 2021 Oct 30;11(11):2912. doi: 10.3390/nano11112912.

Abstract

Recent studies reveal that carbon nanostructures show anomalous piezoelectric properties when the central symmetry of their structure is violated. Particular focus is given to carbon nanotubes (CNTs) with initial significant curvature of the graphene sheet surface, which leads to an asymmetric redistribution of the electron density. This paper presents the results of studies on the piezoelectric properties of aligned multi-walled CNTs. An original technique for evaluating the effective piezoelectric coefficient of CNTs is presented. For the first time, in this study, we investigate the influence of the growth temperature and thickness of the catalytic Ni layer on the value of the piezoelectric coefficient of CNTs. We establish the relationship between the effective piezoelectric coefficient of CNTs and their defectiveness and diameter, which determines the curvature of the graphene sheet surface. The calculated values of the effective piezoelectric coefficient of CNTs are shown to be between 0.019 and 0.413 C/m, depending on the degree of their defectiveness and diameter.

摘要

近期研究表明,当碳纳米结构的结构中心对称性被破坏时,它们会呈现出异常的压电特性。特别关注的是石墨烯片表面初始具有显著曲率的碳纳米管(CNT),这会导致电子密度的不对称重新分布。本文展示了对齐的多壁碳纳米管压电特性的研究结果。提出了一种评估碳纳米管有效压电系数的原始技术。在本研究中,我们首次研究了生长温度和催化镍层厚度对碳纳米管压电系数值的影响。我们建立了碳纳米管有效压电系数与其缺陷程度和直径之间的关系,而缺陷程度和直径决定了石墨烯片表面的曲率。结果表明,根据碳纳米管的缺陷程度和直径不同,其有效压电系数的计算值在0.019至0.413 C/m之间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a725/8617926/849e07fce416/nanomaterials-11-02912-g001.jpg

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