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Strategy and mechanism for controlling the direction of defect evolution in graphene: preparation of high quality defect healed and hierarchically porous graphene

机译:控制策略和机制在石墨烯缺陷演化方向:愈合,制备高质量的缺陷分层次多孔石墨烯

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In this paper, a novel approach for controlling the direction of defect evolution in graphene through intercalation of organic small molecules into graphite oxide (GO) combined with a one-pot microwave-assisted reaction is reported. By using ethanol as intercalator, the bulk production of high quality graphene with its defects being satisfactorily healed is achieved. The repair of defects using extraneous carbon atoms and the hybrid state of these carbon atoms are definitely demonstrated using isotopic tracing studies with ~(13)C-labeled ethanol combined with ~(13)C solid-state NMR. The defect healed graphene shows excellent crystallinity, extremely low oxygen content (C: O ratio of 23.8) and has the highest sheet conductivity (61500 S m~(-1)) compared to all other reported graphene products derived from GO. By using methanol or benzene as intercalators, hierarchically porous graphene with a self-supported 3-dimen-sional framework (~917 m~2 g~(-1)) containing both macropores and mesopores (2-5 nm) is obtained. This graphene possesses a distinctive amorphous carbon structure around the edge of the nanopores, which could be conducive to enhancing the lithium storage performance (up to 580 mA h g~(-1) after 300 cycles) when tested as an anode of lithium ion batteries, and might have promising applications in the field of electrode materials, catalysis, and separation, and so on. The mechanism involved for the controlled defect evolution is also proposed. The simple, ultrafast and unified strategy developed in this research provides a practical and effective approach to harness structural defects in graphene-based materials, which could also be expanded for designing and preparing other ordered carbon materials with specific structures.
机译:在本文中,控制的新方法在石墨烯缺陷演化的方向通过夹层的有机小分子到氧化石墨(去)加上一个锅微波反应报道。乙醇作为intercalator,批量生产高质量石墨烯的缺陷满意地愈合。使用多余的碳原子和缺陷混合这些碳原子是绝对的状态证明了用同位素跟踪研究~ (13) C-labeled乙醇结合~ (13)C固态核磁共振。优秀的结晶度,极低的氧气内容(C: O比23.8)和最高单导(61500年代m ~(1))相比来自所有其他报道的石墨烯产品走了。intercalators,分层多孔石墨烯用且3-dimen-sional框架(~ 917 m ~ 2 g ~(1)包含大孔隙和中孔(2 - 5海里)。拥有独特的无定形碳结构在纳米孔的边缘可以有利于提高锂吗存储性能(马580 h g ~ (1)300年周期)测试作为阳极锂离子电池,可能会有前途的应用领域的电极材料,催化和分离,等等。机制所涉及的控制缺陷进化是还提议。在本研究开发和统一的策略提供了一个实用和有效的方法利用石墨烯的结构性缺陷材料,也可以扩大设计和其他命令碳做准备材料与特定的结构。

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