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A TCAD device simulator for exotic materials and its application to a negative-capacitance FET

机译:TCAD器件仿真器,用于异质材料及其在负电容FET中的应用

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A new device simulator named Impulse TCAD was developed, being built on top of a nonlinear finite volume method solver, which is further based on the Python script language and its associated scientific libraries. The user can fully customize the device properties and/or equations using scripts, which allows ready handling of exotic materials with nonstandard physical models. As a demonstration, a transient analysis of a negative-capacitance field-effect transistor (NC FET) is presented. The ferroelectric material in the NC FET is handled by using the time-dependent Ginzburg-Landau-Devonshire (GLD) equation, while standard device equations are applied for the rest of the device. The simulations show that, starting from the spontaneous polarization state, the ferroelectric regions evolve into the negative-capacitance regime, showing the expected characteristics of a NC FET. They also indicate that the Ginzburg term in the GLD equation, which is related to the correlation radius rc, plays an important role in the appearance of the negative-capacitance effect. When rc is too short compared with the channel length, the ferroelectric region becomes segregated into multiple polarization domains, resulting in loss of the NC FET characteristic.
机译:在非线性有限体积方法求解器的基础上,开发了一种新的名为Impulse TCAD的设备仿真器,该求解器进一步基于Python脚本语言及其相关的科学库。用户可以使用脚本完全自定义设备属性和/或方程式,从而可以使用非标准的物理模型随时处理奇特的材料。作为演示,介绍了对负电容场效应晶体管(NC FET)的瞬态分析。 NC FET中的铁电材料通过使用随时间变化的Ginzburg-Landau-Devonshire(GLD)方程进行处理,而标准器件方程则用于其余器件。仿真显示,从自发极化状态开始,铁电区域演变为负电容状态,显示出NC FET的预期特性。他们还表明,与相关半径rc相关的GLD方程中的Ginzburg项在负电容效应的出现中起着重要作用。当rc与沟道长度相比太短时,铁电区将被隔离到多个极化域中,从而导致NC FET特性丧失。

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