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New Tunneling Features in Polar III-Nitride Resonant Tunneling Diodes

机译:极性III族氮化物谐振隧道二极管的新隧道特征

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For the past two decades, repeatable resonant tunneling transport of electrons in III-nitride double barrier heterostructures has remained elusive at room temperature. In this work we theoretically and experimentally study III-nitride double-barrier resonant tunneling diodes (RTDs), the quantum transport characteristics of which exhibit new features that are unexplainable using existing semiconductor theory. The repeatable and robust resonant transport in our devices enables us to track the origin of these features to the broken inversion symmetry in the uniaxial crystal structure, which generates built-in spontaneous and piezoelectric polarization fields. Resonant tunneling transport enabled by the ground state as well as by the first excited state is demonstrated for the first time over a wide temperature window in planar III-nitride RTDs. An analytical transport model for polar resonant tunneling heterostructures is introduced for the first time, showing a good quantitative agreement with experimental data. From this model we realize that tunneling transport is an extremely sensitive measure of the built-in polarization fields. Since such electric fields play a crucial role in the design of electronic and photonic devices, but are difficult to measure, our work provides a completely new method to accurately determine their magnitude for the entire class of polar heterostructures.
机译:在过去的二十年中,III-氮化物双阻隔异质结构中的电子中的可重复共振隧穿运输在室温下难以捉摸。在这项工作中,我们理论上和实验研究III-氮化物双阻隔谐振隧道二极管(RTD),其量子传输特性,其具有使用现有半导体理论无法解释的新功能。我们的设备中的可重复和稳健的谐振传输使我们能够跟踪这些特征的起源到单轴晶体结构中的破碎反演对称,这产生内置自发性和压电偏振场。在平面III族氮化物RTDS中的宽温度窗口中,第一次在地面状态和第一激发态使得由地态和第一激发状态能够进行谐振隧道传输。首次引入极谐振隧道异质结构的分析传输模型,显示出与实验数据的良好定量协议。从该模型中,我们意识到隧道运输是内置偏振场的极其敏感的措施。由于这种电场在电子和光子器件的设计中发挥着至关重要的作用,但是难以测量,我们的工作提供了一种全新的方法来准确地确定整个类别的极性异构结构的大小。

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