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Quantum-dot assisted spectroscopy of degeneracy-lifted Landau levels in graphene

机译:石墨烯的Quantum-Dot辅助光谱升降的Landau水平

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Energy spectroscopy of strongly interacting phases requires probes which minimize screening while retaining spectral resolution and local sensitivity. Here, we demonstrate that such probes can be realized using atomic sized quantum dots bound to defects in hexagonal Boron Nitride tunnel barriers, placed at nanometric distance from graphene. With dot energies capacitively tuned by a planar graphite electrode, dot-assisted tunneling becomes highly sensitive to the graphene excitation spectrum. The spectra track the onset of degeneracy lifting with magnetic field at the ground state, and at unoccupied excited states, revealing symmetry-broken gaps which develop steeply with magnetic field - corresponding to Landé g factors as high as 160. Measured up to B?=?33 T, spectra exhibit a primary energy split between spin-polarized excited states, and a secondary spin-dependent valley-split. Our results show that defect dots probe the spectra while minimizing local screening, and are thus exceptionally sensitive to interacting states.
机译:强相互作用阶段的能谱需要探针,其最小化筛选,同时保持光谱分辨率和局部灵敏度。在这里,我们证明可以使用六边形氮化硼隧道屏障缺陷的原子大小的量子点来实现这些探针,其偏离距石墨烯的纳米距离。通过平面石墨电极电容调节的点精度,点辅助隧道对石墨烯激励光谱变得高度敏感。光谱跟踪以地态以磁场抬起的退化性升降,并且在未占用的兴奋状态下,揭示了对称破碎的间隙,磁场陡峭地发展 - 对应高达160的LandéG因子。测量到B?= ?33 T,光谱表现出旋转极化激发态之间的主要能量,以及二次自旋依赖性谷分裂。我们的结果表明,缺陷点探测光谱,同时最小化局部筛选,因此对交互状态非常敏感。

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