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A Stand-Alone, Physics-Based, Measurement-Driven Model and Simulation Tool for Random Telegraph Signals Originating From Experimentally Identified MOS Gate-Oxide Defects

机译:基于物理的,基于测量的独立模型,测量驱动的模型和仿真工具,用于源自实验确定的MOS栅氧化层缺陷的随机电报信号

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Investigating random telegraph signals (RTS) observed in MOS devices is important for studying the gate-oxide defect characteristics and developing simulation and modeling tools in highly scaled devices. In this paper, we are presenting a comprehensive, variable-temperature, single-to-multitrap scalable RTS model and a simulation tool (RTSSIM) based on the first principles, and supported by experimental data. The physical and electrical characteristics of the actual oxide defects are considered, such as trapping barrier energy, capture cross section, trap-binding enthalpy, entropy change with emission, Coulombic scattering effect, and the trap location. Experimentally obtained time-domain switching data and RTS traces reconstructed by the developed simulation tool are compared for assessing the accuracy of the modeling. In this paper, we identified the trap species responsible for the RTS as an unrelaxed neutral oxygen deficiency center ( ODC II) with measured and theoretically verified relaxation energy of 1.11, 1.25, and 0.60 eV. RTSSIM is a tool used to mimic or reproduce a given noise measurement on a particular device. The simulation tool shows over 92% accuracy in replicating the RTS and trap characteristics. The model also represents the first realistic simulation of multilevel RTS.
机译:研究在MOS器件中观察到的随机电报信号(RTS)对于研究栅极氧化物的缺陷特征以及开发大规模器件中的仿真和建模工具非常重要。在本文中,我们将基于第一个原理并在实验数据的支持下,提供一个全面的,可变温度,单对多陷阱可扩展RTS模型和一个仿真工具(RTSSIM)。考虑实际氧化物缺陷的物理和电气特性,例如陷阱势垒能,俘获截面,陷阱结合焓,随发射的熵变,库仑散射效应和陷阱位置。比较实验获得的时域切换数据和由开发的仿真工具重建的RTS轨迹,以评估建模的准确性。在本文中,我们确定了负责RTS的捕集阱物种为未松弛的中性氧缺乏中心(ODC II),其实测弛豫能量为1.11、1.25和0.60 eV。 RTSSIM是一种工具,用于在特定设备上模拟或再现给定的噪声测量结果。该仿真工具在复制RTS和陷阱特征方面显示出超过92%的准确性。该模型还代表了多级RTS的第一个现实模拟。

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