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Hydrogenated-Graphene-Encapsulated Graphene: A Versatile Material for Device Applications

机译:氢化石墨烯封装的石墨烯:器件应用的多功能材料

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Graphene and its heterostructures exhibit interesting electronic properties and are explored for quantum spin Hall effect (QSHE) and magnetism-based device applications. In present work, we propose a heterostructure of graphene encapsulated by hydrogenated-graphene, which could be a promising candidate for a variety of device applications. We have carried out DFT calculations on this system to check its feasibility to be a versatile material. We found that electronic states of multilayer pristine graphene, especially the Dirac cone, an important feature to host QSHE, can be preserved by sandwiching it by fully hydrogenated graphene. The interference of electronic states of hydrogenated graphene was insignificant with those of graphene. States of graphene were also found to be stable upon application of an electric field up to ±2.5 Vm. For device applications, multilayer graphene or its heterostructures are required to be deposited on a substrate, which interacts with the system opening up a gap at the Dirac cone making it less suitable for QSHE applications, and hydrogenated graphene can prevent it. Magnetization in these hydrogenated-graphene-sandwiched graphene systems may be induced by creating vacancies or distortions in hydrogenated graphene, which was found to have a minimal effect on graphene’s electronic states, thus providing an additional degree of manipulation. We also performed a set of calculations to explore its applicability for detecting some molecules. Our results on trilayer graphene encapsulated by hydrogenated graphene indicate that all these observations can be generalized for systems with a larger number of graphene layers, indicating that multilayer graphene sandwiched between two hydrogenated graphene is a versatile material that can be used in QSHE and sensor devices.
机译:石墨烯及其异质结构展现出令人感兴趣的电子特性,并被研究用于量子自旋霍尔效应(QSHE)和基于磁性的器件应用。在目前的工作中,我们提出了一种被氢化石墨烯包裹的石墨烯异质结构,它可能是多种器件应用中有希望的候选物。我们已经对该系统进行了DFT计算,以检查其作为通用材料的可行性。我们发现,多层原始石墨烯的电子态,尤其是狄拉克锥,是承载QSHE的重要特征,可以通过将其夹在完全氢化的石墨烯中来保留。氢化石墨烯的电子态干扰与石墨烯无关。还发现,在施加高达±2.5 V / nm的电场时,石墨烯的状态稳定。对于器件应用,要求将多层石墨烯或其异质结构沉积在基材上,该基材与系统相互作用会在Dirac锥孔处打开一个间隙,从而使其不太适合QSHE应用,而氢化石墨烯可以防止这种情况。这些氢化石墨烯夹心石墨烯体系中的磁化可能是通过在氢化石墨烯中产生空位或畸变而引起的,发现这种空位或畸变对石墨烯的电子态影响很小,从而提供了更高的操纵度。我们还进行了一系列计算,以探索其在检测某些分子中的适用性。我们对氢化石墨烯封装的三层石墨烯的研究结果表明,所有这些观察结果都可以推广到具有大量石墨烯层的系统,这表明夹在两个氢化石墨烯之间的多层石墨烯是一种通用材料,可用于QSHE和传感器设备。

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