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Thermal conductivity of graphene and graphene oxide nanoplatelets

机译:石墨烯和氧化石墨烯纳米片的导热系数

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摘要

The superior thermal transport in graphene has been a topic of great interest to the scientific community, for graphene is envisioned to be important in numerous applications such as thermal management of electronics. While single layer graphene exhibits high thermal conductivity, molecular and lattice dynamics simulations reveal that even in the presence of one or few additional layers, thermal conductivity can be significantly reduced. In fact, with increasing number of layers, thermal conductivity is expected to eventually approach the value of bulk graphite. The interlayer spacing is also known to have a significant influence on thermal conductivity, for it is the combination of the number of layers and the spacing between them that truly is responsible for the thermal conductivity of a multi-layer graphene platelet. Here, we report the experimentally obtained thermal conductivities for nanoplatelets of graphene oxide and reduced graphene exfoliated to differing degrees. Results show that the thermal conductivity measured for reduced graphene platelets with ∼ 30 to 45 layers approaches the value of bulk graphite. The thermal conductivity of oxygen intercalated graphene nanoplatelets with ∼ 3 layers and 7% oxygen is higher than bulk graphite with similar interlayer spacing. Despite the increased interlayer spacing and presence of the oxygen atoms, which typically enhances phonon scattering, the high value of thermal conductivity can be attributed to the increase in the interlayer coupling due to covalent interactions provided by the oxygen atoms.
机译:石墨烯中优异的热传输一直是科学界关注的话题,因为石墨烯在许多应用(例如电子器件的热管理)中很重要。尽管单层石墨烯显示出高导热率,但是分子和晶格动力学模拟显示,即使存在一层或几层附加层,导热率也可以显着降低。实际上,随着层数的增加,热导率有望最终接近块状石墨的值。还已知层间间隔对热导率具有显着影响,因为层数和它们之间的间隔的组合才真正负责多层石墨烯薄片的热导率。在这里,我们报告了石墨烯氧化物和还原性石墨烯剥落到不同程度的纳米片的实验获得的热导率。结果表明,对于约30至45层的还原石墨烯血小板,所测得的热导率接近块状石墨的值。具有〜3层和7%氧气的氧插层石墨烯纳米片的热导率高于具有相似层间距的块状石墨。尽管增加了层间间隔并增加了氧原子的存在,这通常会增强声子的散射,但是由于氧原子提供的共价相互作用,热导率的高值可以归因于层间耦合的增加。

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