论文标题

石墨烯 - inas纳米线垂直异质结构中的异常热电振荡

Anomalous thermopower oscillations in graphene-InAs nanowire vertical heterostructures

论文作者

Mitra, Richa, Sahu, Manas Ranjan, Sood, Aditya, Taniguchi, Takashi, Watanabe, Kenji, Shtrikman, Hadas, Mukerjee, Subroto, Sood, A. K., Das, Anindya

论文摘要

热电测量有可能发现低维材料状态的密度。在这里,我们介绍了单层石墨烯 - 纳米线(NW)异质结构的异常热电行为,显示了大振荡,这是掺杂浓度的函数。我们的设备由INAS NW和石墨烯垂直异质结构组成,它们通过薄($ \ sim $ 10nm)固定硼(HBN)层进行电隔离。与传统的热电测量相反,将加热器放置在样品的一侧,我们使用INAS NW(直径$ \ sim 50 $ nm)作为放置在石墨烯通道中间的本地加热器。由于温度(1.5k -50k)和载体浓度的函数,我们测量石墨烯中诱导的热电电压。如Mott的公式所预测的那样,双层石墨烯(BLG)中的热电电压显示在狄拉克点周围的符号变化。相反,在单层石墨烯(MLG)-NW异质结构上测量的热电电压显示在狄拉克点周围的大振幅振荡异常,在同一设备上测得的电导率的莫特响应中看不到。异常振荡是NW的静电电势在MLG中修饰的状态密度的标志,在NW-BLG设备中较弱。异质结构堆栈的热计算表明,温度梯度在NW下方的石墨烯区域占主导地位,因此对导致热电电压中异常振荡的状态密度敏感。此外,随着磁场的应用,由于MLG和BLG中Landau水平的形成,我们检测到状态密度的修饰。

Thermoelectric measurements have the potential to uncover the density of states of low-dimensional materials. Here, we present the anomalous thermoelectric behaviour of mono-layer graphene-nanowire (NW) heterostructures, showing large oscillations as a function of doping concentration. Our devices consist of InAs NW and graphene vertical heterostructures, which are electrically isolated by thin ($\sim$ 10nm) hexagonal boron nitride (hBN) layers. In contrast to conventional thermoelectric measurements, where a heater is placed on one side of a sample, we use the InAs NW (diameter $\sim 50$ nm) as a local heater placed in the middle of the graphene channel. We measure the thermoelectric voltage induced in graphene due to Joule heating in the NW as a function of temperature (1.5K - 50K) and carrier concentration. The thermoelectric voltage in bilayer graphene (BLG)- NW heterostructures shows sign change around the Dirac point, as predicted by Mott's formula. In contrast, the thermoelectric voltage measured across monolayer graphene (MLG)-NW heterostructures shows anomalous large-amplitude oscillations around the Dirac point, not seen in the Mott response derived from the electrical conductivity measured on the same device. The anomalous oscillations are a signature of the modified density of states in MLG by the electrostatic potential of the NW, which is much weaker in the NW-BLG devices. Thermal calculations of the heterostructure stack show that the temperature gradient is dominant in the graphene region underneath the NW, and thus sensitive to the modified density of states resulting in anomalous oscillations in the thermoelectric voltage. Furthermore, with the application of a magnetic field, we detect modifications in the density of states due to the formation of Landau levels in both MLG and BLG.

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