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From graphene oxide to pristine graphene: revealing the inner workings of the full structural restoration

机译:从石墨烯氧化物到原始石墨烯:揭示了完整的内部运作结构修复

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摘要

High temperature annealing is the only method known to date that allows the complete repair of a defective lattice of graphenes derived from graphite oxide, but most of the relevant aspects of such restoration processes are poorly understood. Here, we investigate both experimentally (scanning probe microscopy) and theoretically (molecular dynamics simulations) the thermal evolution of individual graphene oxide sheets, which is rationalized on the basis of the generation and the dynamics of atomic vacancies in the carbon lattice. For unreduced and mildly reduced graphene oxide sheets, the amount of generated vacancies was so large that they disintegrated at 1773-2073 K. By contrast, highly reduced sheets survived annealing and their structure could be completely restored at 2073 K. For the latter, a minor atomic-sized defect with six-fold symmetry was observed and ascribed to a stable cluster of nitrogen dopants. The thermal behavior of the sheets was significantly altered when they were supported on a vacancy-decorated graphite substrate, as well as for the overlapped/stacked sheets. In these cases, a net transfer of carbon atoms between neighboring sheets via atomic vacancies takes place, affording an additional healing process. Direct evidence of sheet coalescence with the step edge of the graphite substrate was also gathered from experiments and theory.
机译:高温退火是唯一的方法日期,允许完整的修复有缺陷的石墨烯来源于晶格氧化石墨,但大多数相关的方面这样的恢复过程是不佳理解。实验(扫描探针显微镜)理论上(分子动力学模拟)单个石墨烯的热演化氧化床单,合理化基础上的生成和原子的动力学空缺的碳晶格。和轻度降低氧化石墨烯表,生成的职位空缺数量如此之大他们在1773 - 2073 K解体。退火和高度减少床单幸存下来其结构可以完全恢复2073 K。观察6倍对称和缺陷归因于稳定的氮掺杂物。床单的热行为当他们支持而发生明显改变一个vacancy-decorated石墨衬底至于重叠/堆表。情况下,碳原子之间的净转移通过原子空缺需要相邻表的地方,提供额外的愈合过程。聚结板的直接证据一步的边缘石墨衬底也从实验和理论。

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