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富勒烯衍生纳米材料及其聚合物复合材料的顺磁特性:剧烈的泵浦效应

Paramagnetic Properties of Fullerene-Derived Nanomaterials and Their Polymer Composites: Drastic Pumping Out Effect.

作者信息

Konchits Andriy A, Shanina Bela D, Krasnovyd Serhii V, Burya Alexander I, Kuznetsova Olga Yu

机构信息

V.E. Lashkaryov Institute for Semiconductor Physics NAS of Ukraine, Kyiv, 03028, Ukraine.

Dniprodzerzhynsk State Technical University, Dniprodzerzhinsk, 51918, Ukraine.

出版信息

Nanoscale Res Lett. 2017 Dec;12(1):475. doi: 10.1186/s11671-017-2241-3. Epub 2017 Aug 1.

Abstract

The evolution of paramagnetic properties of the fullerene soot (FS), fullerene black (FB), and their polymer composites Phenylon C-2/FS, FB has been studied using the electron paramagnetic resonance (EPR) method. For the first time, a drastic growth of the EPR signals in the FB, FS, and composite samples was observed under pumping out at temperatures T = 20 ÷ 300 °C, which is attributed to the interaction between carbon defects and adsorbed gas molecules, mainly oxygen.It is shown that the ensemble of paramagnetic centers in the FB, FS, and the composite is heterogeneous. This ensemble consists of three spin subsystems 1, 2, and 3 related with different structural elements. The subsystems give three corresponding contributions, L , L and L , into the overall contour of the EPR signal. The most intensive and broad signal L is caused by 2D electrons from the surface of carbon flakes. Theoretical calculations of the L signal line shape were carried out, and the decay rate of the integral intensity has been obtained for each component L , L , and L after the contact of the sample with the ambient air. The signal decay process in the bulk composite samples is much slower due to their low gas permeability at room temperature (RT).

摘要

利用电子顺磁共振(EPR)方法研究了富勒烯烟灰(FS)、富勒烯黑(FB)及其聚合物复合材料Phenylon C - 2/FS、FB的顺磁性质演变。首次观察到在20÷300°C的温度下抽空时,FB、FS和复合材料样品中的EPR信号急剧增长,这归因于碳缺陷与吸附气体分子(主要是氧气)之间的相互作用。结果表明,FB、FS和复合材料中的顺磁中心集合是异质的。该集合由与不同结构元素相关的三个自旋子系统1、2和3组成。这些子系统对EPR信号的整体轮廓给出了三个相应的贡献L、L和L。最强烈且最宽的信号L由碳薄片表面的二维电子引起。对L信号的线形进行了理论计算,并在样品与环境空气接触后获得了每个分量L、L和L的积分强度衰减率。由于块状复合材料样品在室温(RT)下的气体渗透率低,其信号衰减过程要慢得多。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/04d2/5539065/faf120e10e6f/11671_2017_2241_Fig1_HTML.jpg

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