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首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Probing quantum Hall states with single-electron transistors at high magnetic fields
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APS -APS March Meeting 2017 - Event - Probing quantum Hall states with single-electron transistors at high magnetic fields

机译:APS -APS 2017年3月会议-活动-在强磁场下用单电子晶体管探测量子霍尔状态

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The sequence of fractional quantum Hall states in graphene is not yet fully understood, largely due to disorder-induced limitations of conventional transport studies. Measurements of magnetotransport in other 2D crystals are further complicated by the difficulties in making ohmic contact to the materials. On the other hand, bulk electronic compressibility can provide clear signatures of the integer and fractional quantum Hall effects, does not require ohmic contact, and can be localized to regions of low disorder. The single-electron transistor (SET) is a suitable tool for such experiments due to its small size and high charge sensitivity, which allow electric fields penetrating the 2D electron system to be detected locally and with high fidelity. Here we report studies of exfoliated 2D van der Waals materials fully encapsulated in flakes of hexagonal boron nitride. SETs are fabricated lithographically on top of the encapsulation, yielding a structure which lends itself to experiments at high electric and magnetic fields. We demonstrate the method on monolayer graphene, where we observe fractional quantum Hall states at all filling factors $u = n/3$ up to $n=17$ and extract their associated energy gaps for magnetic fields up to 31 tesla.
机译:石墨烯中的分数量子霍尔态的序列尚未完全理解,这主要是由于常规运输研究的无序诱发的局限性。由于难以与材料进行欧姆接触,因此其他2D晶体中的磁性传输的测量变得更加复杂。另一方面,体电子可压缩性可以提供整数和分数量子霍尔效应的清晰特征,不需要欧姆接触,并且可以定位于低无序区域。单电子晶体管(SET)由于其体积小和电荷敏感性高,因此是进行此类实验的合适工具,可以使穿透2D电子系统的电场局部且保真度高。在这里,我们报道了完全封装在六方氮化硼薄片中的剥落二维范德华材料的研究。 SET在封装的顶部进行光刻制造,从而形成一种结构,可用于在高电场和磁场下进行实验。我们演示了在单层石墨烯上的方法,其中我们观察了在所有填充因子$ u = n / 3 $到$ n = 17 $的分数量子霍尔态,并提取了它们在高达31 tesla的磁场中的能隙。

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