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Giant electron-hole transport asymmetry in ultra-short quantum transistors

机译:超短量子晶体管中的巨电子空穴传输不对称性

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摘要

Making use of bipolar transport in single-wall carbon nanotube quantum transistors would permit a single device to operate as both a quantum dot and a ballistic conductor or as two quantum dots with different charging energies. Here we report ultra-clean 10 to 100 nm scale suspended nanotube transistors with a large electron-hole transport asymmetry. The devices consist of naked nanotube channels contacted with sections of tube under annealed gold. The annealed gold acts as an n-doping top gate, allowing coherent quantum transport, and can create nanometre-sharp barriers. These tunnel barriers define a single quantum dot whose charging energies to add an electron or a hole are vastly different (e−h charging energy asymmetry). We parameterize the e−h transport asymmetry by the ratio of the hole and electron charging energies ηe−h. This asymmetry is maximized for short channels and small band gap tubes. In a small band gap device, we demonstrate the fabrication of a dual functionality quantum device acting as a quantum dot for holes and a much longer quantum bus for electrons. In a 14 nm-long channel, ηe−h reaches up to 2.6 for a device with a band gap of 270 meV. The charging energies in this device exceed 100 meV.
机译:在单壁碳纳米管量子晶体管中利用双极传输将使单个设备既可以用作量子点又可以用作弹道导体,也可以用作具有不同充电能量的两个量子点。在这里,我们报道了具有大的电子-空穴传输不对称性的超清洁10至100µnm规模的悬浮纳米管晶体管。该装置由在退火金下与管段接触的裸露的纳米管通道组成。退火的金充当n掺杂顶栅,允许相干的量子传输,并可以创建纳米级的锐利势垒。这些隧道势垒定义了一个量子点,其添加电子或空穴的充电能大不相同(eh充电能不对称)。我们通过空穴与电子充电能ηe-h之比来参数化eh传输不对称性。对于短通道和小带隙管,这种不对称性最大。在一个小带隙器件中,我们演示了双重功能量子器件的制造,该器件用作空穴的量子点和更长的电子量子总线。在一个14 nm长的通道中,对于带隙为270 meV的器件,ηe-h高达2.6。该设备的充电能量超过100µmeV。

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