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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Layer-by-layer synthesis of bilayer and multilayer graphene on Cu foil utilizing the catalytic activity of cobalt nano-powders
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Layer-by-layer synthesis of bilayer and multilayer graphene on Cu foil utilizing the catalytic activity of cobalt nano-powders

机译:利用钴纳米粉末催化活性的Cu箔层和多层石墨烯层的逐层合成

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Layer-by-layer synthesis of graphene films has been of considerable interest for the precise layer engineering. However, the additional graphene layer typically forms on the Cu surface but underneath the existing graphene layer, limited by the catalytic substrate mediated growth mechanism. This work introduces a reliable cobalt (Co) nano-powders (NP) assisted technique to synthesis the bilayer graphene (BLG) and multilayer graphene (MLG) layer-by-layer on Cu foil in one-step. With nanostructure and highsurface- area, the Co NP demonstrates much higher catalytic activity to provide long-lasting catalytic activity during the graphene growth. The growth of the BLG activated by the Co NP solely has been observed with the growth rate exceeding the Cu-catalyzed single layer graphene (SLG), which validates the superiority of the homo-epitaxial growth. Fully covered uniform Bernal-stacked BLG and high coverage tri-layer graphene are successfully achieved on Cu foils through the optimal growth conditions. This work creates a pathway toward effective production of BLG/MLG via layer-by-layer mode. The utilizing of the NP catalyst may serve as a more general technique for the one-step synthesis of other hybrid heterostucture. (c) 2019 Elsevier Ltd. All rights reserved.
机译:逐层石墨烯薄膜合成对于精确层工程具有相当大的兴趣。然而,额外的石墨烯层通常在Cu表面上形成,而是在现有的石墨烯层下方形成,受催化衬底介导的生长机制的限制。该工作引入了可靠的钴(CO)纳米粉末(NP)辅助技术,在一步中在Cu箔上合成双层石墨烯(BLG)和多层石墨烯(MLG)层。含有纳米结构和高表面积,CO NP证明了在石墨烯生长期间提供更高的催化活性以提供长持久的催化活性。由CO NP活化的BLG的生长仅被比超过Cu催化的单层石墨烯(SLG)的生长速率验证了同源外延生长的优越性。通过最佳生长条件,在Cu箔上成功地实现了完全覆盖的跨堆叠的BLG和高覆盖三层石墨烯。这项工作通过层逐个模式创建了有效生产BLG / MLG的途径。利用NP催化剂可以作为其他杂合异构的单步合成的更通用技术。 (c)2019年elestvier有限公司保留所有权利。

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