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MODELING OF ELECTRON TRANSPORT IN THIN FILMS WITH QUANTUM AND SCATTERING EFFECTS

机译:用量子和散射效果建模电子输送薄膜

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With device dimensions shrinking to nanoscales, quantum effects such as confinement and tunneling become significant in electron transport. In addition, thermal transport in devices is directly coupled to charge transport even in highly scaled devices. While electron-phonon scattering usually helps restore thermodynamic equilibrium, shrinking device dimensions may not ensure enough scattering to restore equilibrium. The simultaneous consideration of scattering effects, which is usually described as particle behavior, and quantum effects, which are wave in nature, is extremely difficult and computationally intensive. Most device transport simulation models are not mature enough to couple quantum effects with strong scattering effects. In this paper, we couple quantum effects and scattering influences on electron transport using the non-equilibrium Green's function formalism. Results indicate a 45 to 70 percent decrease in channel current for the case of near-elastic, phase-breaking, electron-phonon scattering. The single phonon energies ranged from 2meV to 20meV. The results illustrate the importance of including scattering effects with quantum transport. In addition, the NEGF model is used to assess the effect of temperature on device characteristics of thin film superlattices whose applications include thermoelectric cooling of electronic and optoelectronic systems. Results show the predicted Seebeck coefficient to be in good agreement with the measured values.
机译:通过对纳米级缩小的装置尺寸,电气传输中的量子效应如限制和隧道变得显着。此外,即使在高度缩放的设备中,器件中的热传输也直接耦合到充电传输。虽然电子 - 声子散射通常有助于恢复热力学平衡,但收缩装置尺寸可能无法保证足够的散射来恢复平衡。同时考虑散射效应,其通常被描述为颗粒行为,以及在自然界中波浪的量子效应是非常困难和计算密集的。大多数器件运输仿真模型不足以耦合具有强大散射效果的量子效应。在本文中,我们使用非平衡绿色功能形式主义耦合对电子传输的量子效应和散射影响。结果表明近弹性,逐步,电子 - 声子散射的情况下的通道电流降低了45至70%。单个声子能量范围从2mev到20mev。结果说明了包括量子传输的散射效果的重要性。此外,NegF模型用于评估温度对薄膜超晶格的器件特性的影响,其应用包括电子和光电系统的热电冷却。结果显示预测的塞贝克系数与测量值良好。

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