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深黑鳞石炭作为一种低氧化态少层石墨烯片的意外天然来源。

Shungite Carbon as Unexpected Natural Source of Few-Layer Graphene Platelets in a Low Oxidation State.

机构信息

IMEM-CNR , Parco Area delle Scienze 37/A, Località Fontanini , Parma , Italy.

MNF, CMM, Fondazione Bruno Kessler , via Sommarive 18 , Trento , Italy.

出版信息

Inorg Chem. 2018 Jul 16;57(14):8487-8498. doi: 10.1021/acs.inorgchem.8b01164. Epub 2018 Jul 3.

Abstract

The paper reports on the feasibility of obtaining graphene nanomaterials with remarkable structural and chemical features from shungite rocks. The investigation of the composition and structural modifications induced in the pristine, natural C-containing mineraloid by a specifically designed physicochemical purification treatment is performed by a combined use of several techniques (scanning electron microscopy, high resolution transmission electron microscopy, X-ray diffraction, Raman and X-ray photoelectron spectroscopies). The adopted material processing enables efficient extraction of the C phase in the form of thin polycrystalline platelets of a few hundred nanometers sizes, and formed by 6-10 graphene sheets. About 80% of such nanostructures are characterized by a regular sp C honeycomb lattice and an ordered stacking of graphene layers with a d-spacing of ∼0.34 nm. The low oxygen content (∼5%), mainly found in the form of hydroxyl functional groups, provides the graphene platelets (GP) with a chemistry strictly close to that of conventional rGO materials. Such a feature is supported by the high conductivity value of 1.041 × 10 S cm found for pelletized GP, which can be considered a valuable active material for a wide spectrum of advanced applications.

摘要

本文报告了从陨墨烯矿石中获得具有显著结构和化学特征的石墨烯纳米材料的可行性。通过使用多种技术(扫描电子显微镜、高分辨率透射电子显微镜、X 射线衍射、拉曼和 X 射线光电子能谱),对原始天然含碳矿物质在特定设计的物理化学净化处理下引起的组成和结构修饰进行了研究。采用的材料处理方法能够有效地以几百纳米大小的薄多晶薄片的形式提取 C 相,这些薄片由 6-10 个石墨烯片组成。大约 80%的这种纳米结构具有规则的 sp^2 C 蜂窝晶格和石墨烯层的有序堆叠,层间距约为 0.34nm。低氧含量(约 5%),主要以羟基官能团的形式存在,使石墨烯片(GP)具有与传统 rGO 材料严格接近的化学性质。这种特性得到了 1.041×10^-3 S cm 的高电导率值的支持,对于颗粒化的 GP 而言,该电导率值可以被认为是广泛先进应用的有价值的活性材料。

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