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The Preparation and Application of White Graphene

机译:白色石墨烯的制备及应用

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摘要

In this article, another thin film named white graphene is introduced, containing its properties, preparation and potential applications. White graphene, which has the same structure with graphene but quite different electrical properties, can be exfoliated from its layered crystal, hexagonal boron nitride. Here two preparation methods of white graphene including supersonic cleavage and supercritical cleavage are presented. Inspired by the cleavage of graphene oxide, supersonic is applied to BN and few-layered films are obtained. Compared with supersonic cleavage, supercritical cleavage proves to be more successful. As supercritical fluid can diffuse into interlayer space of the layered hexagonal boron nitride easily, once reduce the pressure of the supercritical system fast, supercritical fluid among layers expands and escapes form interlayer, consequently exfoliating the hexagonal boron nitride into few layered structure. A series of characterization demonstrate that the monolayer white graphene prepared in the process matches its theoretical thickness 0.333nm and has lateral sizes at the order of 10 μm. Supercritical cleavage proves to be successful and shows many advantages, such as good production quality and fast production cycle. Furthermore, the band energy of white graphene, which shows quite different from graphene, is simulated via tight-bonding in theory. The excellent properties will lead to extensive applications of white graphene. As white graphene has not received enough concern and exploration, it's potential to play a significant role in the fields of industry and science.
机译:在本文中,介绍了另一种名为白色石墨烯的薄膜,其中包含其性质,制备方法和潜在应用。白色石墨烯具有与石墨烯相同的结构,但电性能却大不相同,可以从其层状晶体六方氮化硼中剥落。本文介绍了白色石墨烯的两种制备方法,包括超音速裂解和超临界裂解。受氧化石墨烯裂解的启发,将超音速应用于BN并获得了几层薄膜。与超音速裂解相比,超临界裂解被证明是更成功的。由于超临界流体容易扩散到六方氮化硼层状结构的层间空间中,因此一旦快速降低超临界体系的压力,各层之间的超临界流体就会膨胀并逸出,形成中间层,从而使六方氮化硼层状剥落成很少的层状结构。一系列表征表明,在该方法中制备的单层白色石墨烯与其理论厚度相匹配,为0.333nm,横向尺寸约为10μm。超临界裂解被证明是成功的,并且显示出许多优点,例如良好的生产质量和快速的生产周期。此外,理论上通过紧密键合模拟了与石墨烯完全不同的白色石墨烯的能带。优异的性能将导致白色石墨烯的广泛应用。由于白色石墨烯尚未引起足够的关注和探索,因此有可能在工业和科学领域发挥重要作用。

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