Centre for Graphene Science, College of Engineering, Mathematics and Physical Sciences, University of Exeter , Exeter EX4 4QF, United Kingdom.
Nano Lett. 2014;14(4):1751-5. doi: 10.1021/nl4040779. Epub 2014 Mar 27.
We show the successful intercalation of large area (1 cm(2)) epitaxial few-layer graphene grown on 4H-SiC with FeCl3. Upon intercalation the resistivity of this system drops from an average value of ∼200 Ω/sq to ∼16 Ω/sq at room temperature. The magneto-conductance shows a weak localization feature with a temperature dependence typical of graphene Dirac fermions demonstrating the decoupling into parallel hole gases of each carbon layer composing the FeCl3 intercalated structure. The phase coherence length (∼1.2 μm at 280 mK) decreases rapidly only for temperatures higher than the 2D magnetic ordering in the intercalant layer while it tends to saturate for temperatures lower than the antiferromagnetic ordering between the planes of FeCl3 molecules providing the first evidence for magnetic ordering in the extreme two-dimensional limit of graphene.
我们展示了大面积(1 cm²)外延少层石墨烯在 4H-SiC 上成功的插层,使用的插层剂是 FeCl3。插层后,该体系的电阻率从室温下的平均约 200 Ω/sq 降至约 16 Ω/sq。磁导率表现出弱局域特征,其温度依赖性与石墨烯狄拉克费米子典型特征一致,表明各碳原子层解耦为平行的空穴气体,构成 FeCl3 插层结构。相位相干长度(在 280 mK 时约为 1.2 μm)仅在插层剂层中的 2D 磁有序温度以上时迅速下降,而在低于 FeCl3 分子层之间反铁磁有序的温度时趋于饱和,这为石墨烯的极端二维极限中的磁有序提供了首个证据。