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Local structure and paramagnetic properties of the nanostructured carbonaceous material shungite

机译:纳米结构含碳材料菱铁矿的局部结构和顺磁性能

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摘要

Using a scanning electron microscopy, elemental analysis, electron paramagnetic resonance, and Raman scattering methods, two types of the shungite materials (Sh-II from Zazhogino deposit and shungite from a commercial filter (ShF)), with different carbon content and porosity, are studied in this work. It was established by scanning electron microscopy data that the structure of the shungite samples is formed by a micron-size agglomeration of carbon and silicon dioxide clusters. It is found from the Raman data that carbon fraction is formed from sp2-hybridized clusters, size of which increases from 9 up to 12 nm after annealing of the samples. High conductivity of shungite is found to belong to the carbon nanoclusters of different sizes. Big clusters give the conduction electron spin resonance signal with a Dysonian line shape with variable g-factor and line width.The careful search of the nature of two other narrow electron paramagnetic resonance signals in shungite, which used to be prescribed to fullerene-like molecules, is fulfilled. Here, it is shown that the oxygen-deficient E'γ centers are responsible for these signals. A strong correlation is revealed between the concentration of Е'γ centers and the line width of conduction electron spin resonance signal, which occurs under annealing process of the samples at T = 570 K. The correlation reasons are a spin-spin coupling between two spin subsystems and time dependent of the Е'γ concentration during annealing process.
机译:使用扫描电子显微镜,元素分析,电子顺磁共振和拉曼散射方法,分别得到了两种碳含量和孔隙率不同的两种类型的菱铁矿材料(Zazhogino矿床中的Sh-II和商品过滤器(ShF)中的菱铁矿)。在这项工作中学习。通过扫描电子显微镜数据可以确定,钨矿样品的结构是由碳和二氧化硅簇的微米级团聚形成的。从拉曼数据中发现,碳组分是由sp 2 杂交簇形成的,样品退火后,簇的大小从9nm增加到12nm。发现高导电性的钨矿属于不同尺寸的碳纳米团簇。大簇为导电电子自旋共振信号提供了一个具有可变g因子和线宽的Dysonian线形。仔细研究了在钨矿中另外两个窄电子顺磁共振信号的性质,该信号以前被规定为富勒烯状分子,实现了。在这里,表明缺氧的E'γ中心负责这些信号。揭示了在annealing'γ中心的浓度与传导电子自旋共振信号的线宽之间存在很强的相关性,这是在样品在T = 570°K的退火过程中发生的。其相关原因是两个自旋之间的自旋-自旋耦合子系统和时间取决于退火过程中Е'γ的浓度。

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