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Thermoelectric Power in Bilayer Graphene Device with Ionic Liquid Gating

机译:具有离子液体门控的双层石墨烯装置中的热电力

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摘要

The quest for materials showing large thermoelectric power has long been one of the important subjects in material science and technology. Such materials have great potential for thermoelectric cooling and also high figure of merit ZT thermoelectric applications. We have fabricated bilayer graphene devices with ionic-liquid gating in order to tune its band gap via application of a perpendicular electric field on a bilayer graphene. By keeping the Fermi level at charge neutral point during the cool-down, we found that the charge puddles effect can be greatly reduced and thus largely improve the transport properties at low T in graphene-based devices using ionic liquid gating. At (Vig, Vbg)?=?(-1?V, +23?V), a band gap of about 36.6?±?3?meV forms, and a nearly 40% enhancement of thermoelectric power at T?=?120?K is clearly observed. Our works demonstrate the feasibility of band gap tuning in a bilayer graphene using ionic liquid gating. We also remark on the significant influence of the charge puddles effect in ionic-liquid-based devices.
机译:寻求显示大型热电力的材料长期以来一直是材料科学和技术的重要科目之一。这种材料具有极大的热电冷却潜力,也具有很大的优点ZT热电应用。我们已经制造了双层石墨烯装置,其具有离子液体浇口,以便通过在双层石墨烯上施加垂直电场来调谐其带隙。通过在冷却期间将FERMI水平保持在电荷中性点,发现使用离子液体门控的基于石墨烯的器件,可以大大降低电荷水坑效果,从而大大改善了基于石墨烯的器件中的输送性质。在(Vig,VBG)?=?( - 1?v,+23 v),带隙约36.6?±3?3?mev形式,并且在t的热电功率提高了近40%?= 120清楚地观察到k。我们的作品展示了使用离子液体门控在双层石墨烯中调谐的带隙调谐的可行性。我们还讨论了电荷水坑效应在离子液体的装置中的显着影响。

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