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首页> 外文期刊>World Journal of Nano Science and Engineering >Study of Timing Characteristics of NOT Gate Transistor Level Circuit Implemented Using Nano-MOSFET by Analyzing Sub-Band Potential Energy Profile and Current-Voltage Characteristic of Quasi-Ballistic Transport
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Study of Timing Characteristics of NOT Gate Transistor Level Circuit Implemented Using Nano-MOSFET by Analyzing Sub-Band Potential Energy Profile and Current-Voltage Characteristic of Quasi-Ballistic Transport

机译:通过分析准能输运的子带势能分布和电流电压特性,研究纳米MOSFET实现的非门晶体管级电路的时序特性

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This paper presents the quasi-ballistic electron transport of a symmetric double-gate (DG) nano-MOSFET with 10 nm gate length and implementation of logical NOT transistor circuit using this nano-MOSFET. Theoretical calculation and simulation using NanoMOS have been done to obtain parameters such as ballistic efficiency, backscattering mean free path, backscattering coefficient, critical length, thermal velocity, capacitances, resistance and drain current. NanoMOS is an on-line device simulator. Theoretical and simulated drain current per micro of width is closely matched. Transistor loaded NOT gate is simulated using WinSpice. Theoretical and simulated value of rise time, fall time, propagation delay and maximum signal frequency of logical NOT transistor level circuit is closely matched. Quasi-ballistic transport has been investigated in this paper since modern MOSFET devices operate between the drift-diffusion and ballistic regimes. This paper aims to enable modern semiconductor device engineers to become familiar with both approaches.
机译:本文介绍了栅长为10 nm的对称双栅(DG)纳米MOSFET的准弹道电子传输以及使用该纳米MOSFET的逻辑非晶体管电路的实现。已经完成了使用NanoMOS的理论计算和仿真,以获得诸如弹道效率,反向散射平均自由程,反向散射系数,临界长度,热速度,电容,电阻和漏极电流等参数。 NanoMOS是一种在线设备模拟器。每微米宽度的理论和模拟漏极电流紧密匹配。使用WinSpice模拟晶体管加载的非门。逻辑非晶体管电平电路的上升时间,下降时间,传播延迟和最大信号频率的理论和仿真值紧密匹配。由于现代MOSFET器件在漂移扩散和弹道状态之间运行,因此已经研究了准弹道传输。本文旨在使现代半导体器件工程师能够熟悉这两种方法。

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