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A Novel Device to Implement Full Set of Three-Input Logic Gates Using a Naphthalene-Based Single-Molecule Field-Effect Transistor

机译:一种新的装置,使用基于萘的单分子场效应晶体管实现全套三输入逻辑门

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摘要

The realization of computational circuits in the nanometer scale leads to a higher speed, lower power consumption, and less occupied area on the chip surface in electronic systems. Two of the most important basic logic gates are three-input exclusive-OR (XOR 3 ) and three-input majority (MAJ 3 ) gates which are the two main functions used in designing computational circuits like full-adder (FA) cells. In this article, a new device (molecular transistor) is presented using the naphthalene molecule. The effects of the input terminal variation of the proposed transistor on its output have been studied. According to the results obtained from the simulation, by applying different voltages to the gate-terminal of the transistor ( ${V}_{mathrm {g}}$ ), the negative differential resistance (NDR) behaviors are observed at different intervals of the source-drain voltage ( ${V}_{mathrm {sd}}$ ). Due to the interesting characteristics of the proposed transistor, a full set of three-input basic logic gates is designed and presented. In these gates, a single transistor is utilized and by applying different bias voltages, it can generate different outputs suitable to the intended functions. Besides, an FA cell is designed using the proposed three-input logic gates. The transistor, the gates, and the FA are simulated using nonequilibrium Green’s function (NEGF) and density functional theory (DFT) to verify their functionality.
机译:纳米级中的计算电路的实现导致较高的速度,较低的功耗,并且在电子系统中的芯片表面上的较少占用区域。两个最重要的基本逻辑门是三输入独占或(XOR 3 )和三输入多数(maj 3 )门,这些门是设计全加法器(FA)单元格等计算电路的两个主要功能。在本文中,使用萘分子给出了一种新的装置(分子晶体管)。研究了所提出的晶体管的输入端子变化对其输出的影响。根据模拟中获得的结果,通过将不同的电压应用于晶体管的栅极端子(<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink”> $ {v} _ { mathrm {g}} $ ),以源 - 漏极电压的不同间隔观察负差分电阻(NDR)行为(<内联 - 公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns :xlink =“http://www.w3.org/1999/xlink”> $ {v} _ { mathrm {sd}} $ )。由于所提出的晶体管的有趣特性,设计并呈现了全套三输入基本逻辑门。在这些栅极中,利用单个晶体管并通过施加不同的偏置电压,它可以产生适合于预期功能的不同输出。此外,使用所提出的三输入逻辑门设计了FACel。晶体管,门和FA使用非QuibiRiblium的函数(NegF)和密度泛函理论(DFT)模拟,以验证其功能。

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