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Room-temperature discrete-charge-fluctuation dynamics of a single molecule adsorbed on a carbon nanotube

机译:室温discrete-charge-fluctuation单分子吸附的动力学碳纳米管

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Detection and use of physical noise fluctuations in a signal provides significant advantages in the development of bio- and neuro-sensing and functional mimicking devices. Low-dimensional carbon nanomaterials are a good candidate for use in noise generation due to the high surface sensitivity of these materials, which may themselves serve as the main building blocks of these devices. Here, we demonstrate that the addition of a molecule with high redox activity to a carbon nanotube (CNT) field-effect transistor provides tunable current fluctuation noise. A unique charge-trap state in the vicinity of the CNT surface due to the presence of the single molecule is the origin of the noise, which generates a prominent and unique slow discrete random telegraph signal in the device current. The power spectral density reveals the peculiar frequency limit of the fluctuation for different types of molecules depending on their redox activity and adsorption configuration. These results indicate that the detected noise will provide new opportunities to obtain electronic information for a single molecule combined with a nanotube surface, and that controllability of the noise may contribute to the expansion of noise utilization in future bio-inspired devices.
机译:检测和使用物理噪声波动在一个信号提供了重要的优势bio -和神经传感的发展功能模拟设备。碳纳米材料是一个很好的候选人使用在噪音的产生由于高表面这些材料的敏感性,这可能自己作为的主要构建块这些设备。添加一个分子具有高氧化还原活性碳纳米管(CNT)场效应晶体管提供可调电流波动噪音。问表面由于的存在单分子是噪声的来源,生成一个杰出而独特的缓慢的离散随机电报信号的装置。功率谱密度揭示了特有的波动的频率限制不同根据氧化还原的分子类型活动和吸附配置。结果表明,检测到的噪声提供新机会获得电子信息单分子结合纳米管表面,可控制性噪音可能导致噪音的扩张在未来的仿生设备利用率。

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