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THERMAL MODELING OF VERY SMALL SCALE DEVICES

机译:小型设备的热建模

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摘要

As electronic device dimensions shrink down to the nanoscale regime, quantum effects such as electron tunneling and quantum confinement become significant. Along with quantum effects, various scattering processes such as carrier-carrier and carrier-defect scattering will influence device performance. Many transport models are not mature enough to couple the thermal effects with electronic solutions at such small scales. Incorporation of strong scattering influences on the electron transport in most cases is extremely difficult and computationally intensive. In this paper, we study a simple model that allows for integration of electron-phonon scattering effects in a nanotransistor. An acoustic deformation potential based electron-phonon scattering model is used to incorporate scattering in the device. A 7.5% drop in channel current was observed for a scattering rate of 10~(13)/sec while current flow dropped by 50% for higher scattering rates. The effective channel resistance due to scattering was found to increase by a factor of 1.3. The results are compared to the Ⅰ-Ⅴ characteristics obtained using the non-equilibrium Green's function (NEGF) formalism and were found to match well. The effect of phase-breaking scattering was also studied using NEGF where a 25% decrease in channel current was obtained thus demonstrating the importance of including scattering effects with quantum transport.
机译:随着电子器件尺寸缩小到纳米尺度,诸如电子隧穿和量子约束之类的量子效应变得显着。除量子效应外,各种散射过程(如载流子-载流子和载流子缺陷的散射)也会影响器件性能。许多运输模型还不够成熟,无法以如此小的规模将热效应与电子解决方案耦合。在大多数情况下,将强散射影响合并到电子传输中非常困难且计算量很大。在本文中,我们研究了一个简单的模型,该模型允许在纳米晶体管中集成电子-声子散射效应。基于声变形势的电子-声子散射模型用于将散射合并到设备中。对于10〜(13)/ sec的散射速率,观察到通道电流下降7.5%,而对于更高的散射速率,电流下降50%。发现由于散射引起的有效沟道电阻增加了1.3倍。将结果与使用非平衡格林函数(NEGF)形式主义获得的Ⅰ-Ⅴ特性进行比较,发现匹配良好。还使用NEGF研究了断相散射的影响,其中沟道电流减少了25%,因此证明了在量子传输中包括散射效应的重要性。

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