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化学修饰的单壁碳纳米管对有害杀虫剂的捕获与传感

Trapping and sensing of hazardous insecticides by chemically modified single walled carbon nanotubes.

作者信息

Bandyopadhyay Arkamita, Ghosh Dibyajyoti, Pati Swapan K

机构信息

New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Jakkur, Bangalore, Karnataka 560064, India.

出版信息

Phys Chem Chem Phys. 2017 Sep 13;19(35):24059-24066. doi: 10.1039/c7cp04980c.

Abstract

The use of insecticides in agriculture is a common practice all over the world, but they are often known to be harmful towards the human body. This requires attention by experimentalists and theorists alike. In this work, using Born-Oppenheimer molecular dynamics (BOMD) and density functional theory (DFT) calculations, we have demonstrated the efficient trapping of several hazardous insecticide molecules on a carbon nanotube (CNT) surface. Our BOMD simulations suggest that under ambient conditions, though pristine CNTs are quite inefficient, transition metal atom (TM) incorporated nitrogen doped CNTs can trap the hazardous molecules at room temperature efficiently. Thorough investigations exhibit the presence of strong η bonding between the aromatic group of the pesticide and the TM adatom of the defective CNT, leading to the trapping of the molecules on the CNT surface. These CNTs are efficient trapping agents even in the presence of water and quite robust for any pesticides with aromatic group(s) in them. Furthermore, interestingly, the charge transfer interactions between the molecules and the defective CNTs lead to molecule specific optical absorption spectra of the composites, effectively developing defective CNTs as a detective optical sensor for pesticide molecules.

摘要

在全球范围内,农业中使用杀虫剂是一种常见做法,但众所周知,它们往往对人体有害。这需要实验人员和理论人员 alike 的关注。在这项工作中,我们使用玻恩-奥本海默分子动力学(BOMD)和密度泛函理论(DFT)计算,证明了几种有害杀虫剂分子在碳纳米管(CNT)表面的高效捕获。我们的 BOMD 模拟表明,在环境条件下,尽管原始 CNTs 效率相当低,但掺入过渡金属原子(TM)的氮掺杂 CNTs 可以在室温下有效地捕获有害分子。深入研究表明,农药的芳香基团与缺陷 CNT 的 TM 吸附原子之间存在强 η 键,导致分子被困在 CNT 表面。即使在有水的情况下,这些 CNTs 也是高效的捕获剂,并且对任何含有芳香基团的农药都相当稳定。此外,有趣的是,分子与缺陷 CNTs 之间的电荷转移相互作用导致复合材料具有分子特异性的光吸收光谱,有效地将缺陷 CNTs 开发为农药分子的检测光学传感器。

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