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栅控少层石墨烯量子点中的库仑振荡。

Coulomb Oscillations in a Gate-Controlled Few-Layer Graphene Quantum Dot.

机构信息

Center for Quantum Information, IIIS, Tsinghua University , Beijing 100084, China.

Department of Physics, Tsinghua University , Beijing 100084, China.

出版信息

Nano Lett. 2016 Oct 12;16(10):6245-6251. doi: 10.1021/acs.nanolett.6b02522. Epub 2016 Sep 21.

Abstract

Graphene quantum dots could be an ideal host for spin qubits and thus have been extensively investigated based on graphene nanoribbons and etched nanostructures; however, edge and substrate-induced disorders severely limit device functionality. Here, we report the confinement of quantum dots in few-layer graphene with tunable barriers, defined by local strain and electrostatic gating. Transport measurements unambiguously reveal that confinement barriers are formed by inducing a band gap via the electrostatic gating together with local strain induced constriction. Numerical simulations according to the local top-gate geometry confirm the band gap opening by a perpendicular electric field. We investigate the magnetic field dependence of the energy-level spectra in these graphene quantum dots. Experimental results reveal a complex evolution of Coulomb oscillations with the magnetic field, featuring kinks at level crossings. The simulation of energy spectrum shows that the kink features and the magnetic field dependence are consistent with experimental observations, implying the hybridized nature of energy-level spectrum of these graphene quantum dots.

摘要

石墨烯量子点可以成为理想的自旋量子比特宿主,因此基于石墨烯纳米带和刻蚀纳米结构的研究已经广泛开展;然而,边缘和衬底诱导的无序严重限制了器件的功能。在这里,我们报告了通过局部应变和静电门控来定义的具有可调势垒的少层石墨烯中量子点的限制。传输测量明确表明,通过静电门控和局部应变诱导的收缩来诱导带隙形成限制势垒。根据局部顶栅几何形状的数值模拟证实了通过垂直电场打开带隙。我们研究了这些石墨烯量子点中能级谱随磁场的变化。实验结果表明,在能级交叉处存在复杂的库仑振荡的磁滞回线。能谱的模拟表明,磁滞回线特征和磁场依赖关系与实验观察一致,这意味着这些石墨烯量子点的能级谱的混合性质。

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