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Device variability and circuit redundancy in signal processing based on nanoswitches

机译:基于纳米开关的信号处理中的设备可变性和电路冗余

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Signal processing based on molecular switches whose conductance can be tuned by an external stimulus between two (on and off) states has been proposed recently (Cervera et al 2008 J. Appl. Phys. 104 084317). The basic building block is a metal nanoparticle linked to two electrodes by an organic ligand and a nanoswitch. The net charge delivered by this nanostructure exhibits a sharp resonance when the alternating potential applied between the electrodes has the same frequency as the periodic variation between the on and off conductance states induced on the nanoswitch. This resonance can be used to process an external signal by selectively extracting the weight of the different harmonics. However, because of the fabrication process at the nanoscale, the nanostructures will show a significant variability in the physical characteristics. By using a phenomenological model that includes this variability, the stochastic nature of electron transference, and the thermal noise, we demonstrate that reliable signal processing can still be achieved by adapting the number of nanoswitches per bit of information (circuit redundancy) to the nanostructure tolerance (device variability). Extensive kinetic Monte Carlo simulations show that a moderate level of redundancy can compensate for significant nanostructure variability. This result gives support to the concept of ensembles of redundant switches as reliable components for signal processing at the nanoscale.
机译:最近已经提出了基于分子开关的信号处理,该分子开关的电导率可以通过两个(开和关)状态之间的外部刺激来调节(Cervera等人,2008 J. Appl。Phys。104 084317)。基本构件是通过有机配体和纳米开关连接到两个电极的金属纳米颗粒。当施加在电极之间的交流电具有与在纳米开关上感应的导通和关断电导状态之间的周期性变化相同的频率时,由该纳米结构传递的净电荷表现出尖锐的共振。通过有选择地提取不同谐波的权重,该谐振可用于处理外部信号。然而,由于在纳米尺度上的制造过程,纳米结构将在物理特性上显示出显着的可变性。通过使用包含这种可变性,电子转移的随机性质和热噪声的现象学模型,我们证明了通过使每位信息的纳米开关的数量(电路冗余)适应纳米结构的公差,仍然可以实现可靠的信号处理(设备可变性)。广泛的动力学蒙特卡洛模拟显示适度的冗余度可以补偿明显的纳米结构变异性。这一结果支持了冗余开关集合的概念,这些集合是用于纳米级信号处理的可靠组件。

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