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New approach to 'high-temperature' quantum switch and quantum field-effect transistor

机译:“高温”量子开关和量子场效应晶体管的新方法

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We report results of studying some natural properties of highly disordered measoscopic systems which seem to be promising for elevating quantum device work temperatures up to 77-300 K. They are FET-type Si-MNOS (metal-nitride-oxide-semiconductor) strucutures with built-in charge concentrations being so high that the systems remain to be strongly disordered even at room temperature. Disorder of studied structures could be controlled by varying charged traps concentration at the SiO_2-Si_3N_4 interface that induce strong potential fluctuations. Important feature of the structures is the possibility to vary the built-in charge over a wide range (up to 10~(13) cm~(-2)) that results in varying the disorder range. The conductance of such a system is shown to be controlled by the single small quantum-sized region with a ballistic transport which is a saddle-point region of the fluctuation relief. Narrowness of that "bottle neck"(comparable with the electron wavelength) results in quantizing conductance of the structure, and if the disorder is high enough, the conductance for some gate voltages shows a real tendency to reach a plateau at the quantum value #epsilon#~2/h. What is important, that tendency occurs at high temperatures (77-300K).
机译:我们报告研究高度无序测定系统的一些自然性能的结果,似乎有希望升高量子器件工作温度高达77-300 K.它们是FET型Si-mnos(金属 - 氮化物氧化物 - 半导体)批量内置电荷浓度如此之高,即使在室温下,系统仍然是强烈的混乱。通过在SiO_2-Si_3N_4界面处改变电荷的陷阱浓度,可以控制研究紊乱,该诱导强烈的潜在波动。结构的重要特征是可以在宽范围内(最多10〜(13 )cm〜(-2))改变内置电荷,导致紊乱范围变化。这种系统的电导被示出为由单个小量子大小区域控制,弹性传输是波动浮雕的鞍点区域。 “瓶颈”(与电子波长相当)的狭窄导致量化结构的电导,如果疾病足够高,则某些栅极电压的电导显示出在量子值下达到高原的真实趋势#epsilon #〜2 / h。重要的是,在高温(77-300K)的趋势发生。

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