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首页> 外文期刊>ACS nano >Manipulating chiral transmission by gate geometry: Switching in graphene with transmission gaps
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Manipulating chiral transmission by gate geometry: Switching in graphene with transmission gaps

机译:通过门的几何形状来操纵手性传递:在具有传递间隙的石墨烯中进行切换

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摘要

We explore the chiral transmission of electrons across graphene heterojunctions for electronic switching using gate geometry alone. A sequence of gates is used to collimate and orthogonalize the chiral transmission lobes across multiple junctions, resulting in negligible overall current. The resistance of the device is enhanced by several orders of magnitude by biasing the gates into the bipolar npn doping regime, even as the ON state in the homogeneous nnn regime remains highly conductive. The mobility is preserved because the switching involves the suppression of transmission over a range of energy (transmission gap) instead of a structural band gap that would reduce the number of available channels of conduction. Under a different biasing scheme (npn to npp), this transmission gap can be made highly gate tunable, allowing a subthermal turn-on that beats the Landauer bound on switching energy, limiting present-day digital electronics.
机译:我们仅使用栅极几何结构就电子跨石墨烯异质结的手性传输进行了探索。使用一系列的门来准直和正交化跨多个结的手性传输波瓣,导致总电流可以忽略不计。通过将栅极偏置到双极npn掺杂方案中,即使在均匀nnn方案中的导通状态保持高度导电的情况下,器件的电阻也可以提高几个数量级。保留了迁移率是因为切换涉及抑制一定范围的能量传输(传输间隙),而不是结构性的带隙,这会减少可用的导电通道数量。在不同的偏置方案(npn到npp)下,可以使该传输间隙高度可调,从而允许亚热导通,从而克服了Landauer的开关能量限制,从而限制了当今的数字电子产品。

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