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首页> 外文期刊>Journal of Physics. Condensed Matter >Exploring the write-in process in molecular quantum cellular automata: a combined modelingand first-principle approach
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Exploring the write-in process in molecular quantum cellular automata: a combined modelingand first-principle approach

机译:探索分子量子蜂窝自动机的写入过程:综合型号和第一原理方法

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The molecular quantum cellular automata paradigm (m-QCA) offers a promising alternative framework to current CMOS implementations. A crucial aspect for implementing this technology concerns the construction of a device which effectively controls intramolecular charge-transfer processes. Tentative experimental implementations have been developed in which a voltage drop is created generating the forces that drive a molecule into a logic state. however, important factors such as the electric field profile, its possible time-dependency and the influence of temperature in the overall success of charge-transfer are relevant issues to be considered in the design of a reliable device. In this work, we theoretically study the role played by these processes in the overall intramolecular charge-transfer process. We have used a Landau-Zener (LZ) model, where different time-dependent electric field profiles have been simulated. The results have been further corroborated employing density functional tight-binding method. The role played by the nuclear motions in the electron-transfer process has been investigated beyond the Born-Oppenheimer approximation by computing the effect of the external electric field in the behavior of the potential energy surface. Hence, we demonstrate that the intramolecular charge-transfer process is a direct consequence of the coherent LZ nonadiabatic tunneling and the hybridization of the diabatic vibronic states which effectively reduces the trapping of the itinerant electron at the donor group.
机译:分子量子蜂窝自动机范例(M-QCA)为当前CMOS实现提供了有希望的替代框架。实施该技术的关键方面涉及结构的结构,该装置有效地控制分子内电荷转移过程。已经开发出暂定的实验实施,其中产生电压降,产生驱动分子成逻辑状态的力。然而,在电荷转移的整体成功中,电场轮廓,其可能的时间依赖性和温度的影响的重要因素是在可靠设备的设计中被考虑的相关问题。在这项工作中,我们从理论上研究了这些过程在整体分子内电荷转移过程中所发挥的作用。我们使用了Landau-zener(LZ)模型,其中已经模拟了不同的时间依赖电场概况。结果进一步证实了采用密度官能紧密结合方法。通过计算外部电场在潜在能量表面的行为的影响之外,已经研究了电子转移过程中的核动动动量在电子转移过程中的作用。因此,我们证明了分子内电荷转移过程是相干LZ非等压隧道的直接后果,并且糖苷振动状态的杂交,其有效地减少了供体基团的潮断电子捕获。

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