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内离子-π 相互作用在 Pb(II)在碳纳米管上吸附中的关键作用:实验和 DFT 研究。

A key role of inner-cation-π interaction in adsorption of Pb(II) on carbon nanotubes: Experimental and DFT studies.

机构信息

Department of Environmental Science, School of Geography and Tourism, Shaanxi Normal University, Xi'an 710119, China; International Joint Research Centre of Shaanxi Province for Pollutants Exposure and Eco-environmental Health, Xi'an 710119, China.

Department of Environmental Science, School of Geography and Tourism, Shaanxi Normal University, Xi'an 710119, China; International Joint Research Centre of Shaanxi Province for Pollutants Exposure and Eco-environmental Health, Xi'an 710119, China.

出版信息

J Hazard Mater. 2021 Jun 15;412:125187. doi: 10.1016/j.jhazmat.2021.125187. Epub 2021 Jan 21.

Abstract

Herein the adsorption and desorption of Pb on oxidized (O-CNTs) and graphitized multi-walled carbon nanotubes (G-CNTs) were studied, and detailed adsorption mechanisms were discussed by experimental characterization and density functional theory (DFT) calculation. The adsorption of Pb on CNTs was co-guided by complexation, ion exchange, electrostatic and cation-π interactions. According to the abnormally low release ratio of Pb on both O-CNTs and G-CNTs (<9.03%), the O-containing groups on CNTs surface are not the only key factor affecting the adsorption behavior. The pore filling and complexation are the main mechanisms leading to irreversible adsorption, especially the important role of the inner-cation-π interaction in Pb adsorption into the inner channel of CNTs at the high initial Pb concentration, and DFT calculations further confirmed this result. The adsorption energy of the inner-cation-π interaction between Pb and CNTs can be as high as - 77.851 kJ/mol, which is much higher than other interactions (≤-41.488 kJ/mol). Moreover, the stability of various adsorption mechanisms by HOMO-LUMO energy gap (E), electronic chemical potential (µ) and global hardness (η) were quantitatively measured and further revealed the inner-cation-π interaction is more stable. This study provides a deeper understanding of the removal of heavy metals by porous carbon-based nanomaterials.

摘要

本文研究了 Pb 在氧化多壁碳纳米管(O-CNTs)和石墨化多壁碳纳米管(G-CNTs)上的吸附和解吸,并通过实验表征和密度泛函理论(DFT)计算讨论了详细的吸附机制。Pb 在 CNTs 上的吸附受到配位、离子交换、静电和阳离子-π 相互作用的共同控制。根据 Pb 在 O-CNTs 和 G-CNTs 上的释放率异常低(<9.03%),表明 CNTs 表面的含氧基团不是唯一影响吸附行为的关键因素。孔填充和配位是导致不可逆吸附的主要机制,特别是在高初始 Pb 浓度下,内-阳离子-π 相互作用在 Pb 吸附进入 CNTs 内通道中的重要作用,DFT 计算进一步证实了这一结果。Pb 与 CNTs 之间的内-阳离子-π 相互作用的吸附能高达-77.851 kJ/mol,远高于其他相互作用(≤-41.488 kJ/mol)。此外,通过 HOMO-LUMO 能隙(E)、电子化学势(µ)和全局硬度(η)定量测量了各种吸附机制的稳定性,进一步表明内-阳离子-π 相互作用更稳定。本研究为多孔碳基纳米材料去除重金属提供了更深入的理解。

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