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Nanosensing Backed by the Uncertainty Principle

机译:不确定性原理支持的纳米传感

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摘要

Possibility for a novel type of sensors for detecting nanosized substances (e.g., macromolecules or molecule dusters) through their effects on electron tunneling in a double nanoscale semiconductor heterostructure is discussed. We studied spectral distributions of localized/delocalized states of a single electron in a double quantum well (DQW) with relation to slight asymmetry perturbations. The asymmetry was modeled by modification of the dot shape and the confinement potential. Electron energy uncertainly is restricted by the differences between energy levels within the spectra of separated QWs. Hence, we established a direct relationship between the uncertainly of electron localization and the energy uncertainty. We have shown in various instances that a small violation of symmetry drastically affects the electron localization. These phenomena can be utilized to devise new sensing functionalities. The charge transport in such sensors is highly sensitive to minuscule symmetry violation caused by the detected substance. The detection of the electron localization constitutes the sensor signal.
机译:讨论了一种新型传感器的可能性,该传感器通过对双纳米级半导体异质结构中电子隧穿的影响来检测纳米级物质(例如,大分子或分子除尘器)。我们研究了双量子阱(DQW)中单个电子的局部/离域态的光谱分布,该分布与轻微的不对称扰动有关。通过修改点的形状和限制电位来模拟不对称性。电子能量不确定地受到分离的量子阱光谱内能级之间差异的限制。因此,我们在电子定位的不确定性与能量的不确定性之间建立了直接的关系。我们已经在各种情况下表明,轻微的对称性破坏会严重影响电子定位。这些现象可以用来设计新的传感功能。这种传感器中的电荷传输对检测到的物质引起的微小对称性违规高度敏感。电子定位的检测构成传感器信号。

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  • 来源
    《Journal of nanotechnology》 |2016年第2016期|3794109.1-3794109.8|共8页
  • 作者单位

    Department of Physics, North Carolina Central University, 1801 Fayetteville Street, Durham, NC 27707, USA;

    Department of Physics, North Carolina Central University, 1801 Fayetteville Street, Durham, NC 27707, USA;

    Department of Physics, North Carolina Central University, 1801 Fayetteville Street, Durham, NC 27707, USA;

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