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功能化石墨烯的高效热电材料。

High-efficiency thermoelectrics with functionalized graphene.

机构信息

Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

出版信息

Nano Lett. 2015 May 13;15(5):2830-5. doi: 10.1021/nl504257q. Epub 2015 Apr 13.

Abstract

Graphene superlattices made with chemical functionalization offer the possibility of tuning both the thermal and electronic properties via nanopatterning of the graphene surface. Using classical and quantum mechanical calculations, we predict that suitable chemical functionalization of graphene can introduce peaks in the density of states at the band edge that result in a large enhancement in the Seebeck coefficient, leading to an increase in the room-temperature power factor of a factor of 2 compared to pristine graphene, despite the degraded electrical conductivity. Furthermore, the presence of patterns on graphene reduces the thermal conductivity, which when taken together leads to an increase in the figure of merit for functionalized graphene by up to 2 orders of magnitude over that of pristine graphene, reaching its maximum ZT ∼ 3 at room temperature according to our calculations. These results suggest that appropriate chemical functionalization could lead to efficient graphene-based thermoelectric materials.

摘要

通过对石墨烯表面的纳米图案化,可以对化学功能化的石墨烯超晶格进行热性能和电子性能的调节。我们通过经典和量子力学计算预测,合适的化学功能化可以在能带边缘的态密度中引入峰值,从而显著提高 Seebeck 系数,使得室温下的功率因子相对于原始石墨烯提高了 2 倍,尽管电导率有所降低。此外,石墨烯上的图案可以降低热导率,这两者结合起来导致功能化石墨烯的优值比原始石墨烯提高了 2 个数量级,根据我们的计算,在室温下达到最大值 ZT∼3。这些结果表明,适当的化学功能化可能会导致高效的基于石墨烯的热电材料。

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