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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Room-temperature synthesis of various allotropes of carbon nanostructures (graphene, graphene polyhedra, carbon nanotubes and nano-onions, n-diamond nanocrystals) with aid of ultrasonic shock using ethanol and potassium hydroxide
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Room-temperature synthesis of various allotropes of carbon nanostructures (graphene, graphene polyhedra, carbon nanotubes and nano-onions, n-diamond nanocrystals) with aid of ultrasonic shock using ethanol and potassium hydroxide

机译:室温合成碳纳米结构(石墨烯,石墨烯,碳纳米管和纳米洋葱,N-金刚石纳米晶,N-金刚石纳米晶)借助于使用乙醇和氢氧化钾的超声冲击

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The exploration of the synthesis methods of sp(2) and sp(3) carbon nanomaterials under ambient conditions is very meaningful towards their industrial applications. The existing bottom-up synthesis methods usually need high temperature or high pressure conditions. We report a facile and environmentally-friendly approach enabling the synthesis of almost all types of known carbon nanostructures at room temperature and under atmosphere pressure. They include both sp(3)-structured n-diamond (not cubic diamond) nanocrystals and sp(2)-structured graphene, defective multiwalled carbon nanotubes, defective carbon nano-onions as well as graphene polyhedra. The reaction of ethanol and potassium hydroxide at ambient conditions yields n-diamond nanocrystals. To synthesize the sp(2) carbon nanomaterials, the assistance of the ultrasonic shock at the early stage of crystallization is necessary to ensure the formation of the carbon ring nucleation seeds. The synthetic yields of n-diamond nanocrystals, graphene polyhedra, defective carbon nano-onions, and graphene are estimated to be 0.37%, 0.30%, 0.04%, and 0.01% (carbon mass ratio), respectively, and all of them have good crystallinity. These results improve our understanding of the low-temperature crystal growth process of the carbon nanostructures. (C) 2021 Elsevier Ltd. All rights reserved.
机译:探索在环境条件下合成sp(2)和sp(3)纳米碳材料的方法对其工业应用具有重要意义。现有的自底向上合成方法通常需要高温或高压条件。我们报告了一种简便且环保的方法,可以在室温和大气压下合成几乎所有类型的已知碳纳米结构。它们包括sp(3)结构的n-金刚石(非立方金刚石)纳米晶体和sp(2)结构的石墨烯、缺陷多壁碳纳米管、缺陷碳纳米洋葱以及石墨烯多面体。乙醇和氢氧化钾在环境条件下反应生成n-金刚石纳米晶体。为了制备sp(2)纳米碳材料,在结晶的早期阶段需要超声冲击的辅助,以确保碳环成核种子的形成。n-金刚石纳米晶、石墨烯多面体、缺陷碳纳米洋葱和石墨烯的合成产率分别为0.37%、0.30%、0.04%和0.01%(碳质量比),且均具有良好的结晶性。这些结果提高了我们对碳纳米结构低温晶体生长过程的理解。(c)2021爱思唯尔有限公司保留所有权利。

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