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Electronic characterisation of atomistic modelling based electrically doped nano bio p-i-n FET

机译:基于原子建模的电掺杂纳米生物p-i-n FET的电子表征

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摘要

In this study, electrically doped bio-molecular p-i-n field-effect transistor (FET) is designed and its electronic properties are investigated. Density functional theory along with non-equilibrium Green's function based first principle approach is used to design the bio-molecular FET at sub-atomic region. Three Adenine and two Thymine molecules are attached together to form 6.24 nm long and 1.40 nm wide bio p-i-n FET. This device is attached with two platinum electrodes and wrapped with a metallic cylindrical gate at high vacuum. Intrinsic n and p regions can be made possible within a bio-molecular device at room temperature by electrical doping without explicit dopants, which leads to conduct current by the device both in forward and reverse bias. The various quantum mechanical properties have been calculated using Poisson's equations and self-consistent function for the bio-molecular FET. Among these various quantum mechanical properties, the authors obtain high quantum transmission along with satisfactory current for the proposed device during the room temperature operation. The goal of this study is to highlight the design of a bio-molecular p-i-n FET with satisfactory large current using ultra low power dissipation.
机译:在这项研究中,设计了电掺杂生物分子p-i-n场效应晶体管(FET)并研究了其电子性能。基于密度泛函理论和基于非平衡格林函数的第一原理方法,用于设计亚原子区域的生物分子FET。将三个腺嘌呤和两个胸腺嘧啶分子连接在一起以形成6.24 nm长和1.40 nm宽的生物p-i-n FET。该装置连接有两个铂电极,并在高真空下包裹有金属圆柱门。在室温下,通过电掺杂而无明显的掺杂剂,可以使生物分子器件中的固有n和p区域成为可能,这会导致器件在正向和反向偏压下传导电流。已使用泊松方程和生物分子FET的自洽函数计算了各种量子力学性能。在这些各种量子力学特性中,作者在室温操作期间获得了高的量子透射率以及令人满意的电流,从而为该器件提供了理想的解决方案。这项研究的目的是突出使用超低功耗,具有令人满意的大电流的生物分子p-i-n FET的设计。

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