Wolfgang Pauli Institute c/o Department of Mathematics, University of Vienna, A-1090 Vienna, Austria.
Nanotechnology. 2011 Oct 21;22(42):425503. doi: 10.1088/0957-4484/22/42/425503.
In order to facilitate the rational design and the characterization of nanowire field-effect sensors, we have developed a model based on self-consistent charge-transport equations combined with interface conditions for the description of the biofunctionalized surface layer at the semiconductor/electrolyte interface. Crucial processes at the interface, such as the screening of the partial charges of the DNA strands and the influence of the angle of the DNA strands with respect to the nanowire, are computed by a Metropolis Monte Carlo algorithm for charged molecules at interfaces. In order to investigate the sensing mechanism of the device, we have computed the current–voltage characteristics, the electrostatic potential and the concentrations of electrons and holes. Very good agreement with measurements has been found and optimal device parameters have been identified. Our approach provides the capability to study the device sensitivity, which is of fundamental importance for reliable sensing.
为了便于对纳米线场效应传感器进行合理设计和特性描述,我们开发了一个基于自洽电荷输运方程并结合半导体/电解质界面处的生物功能化表面层的界面条件的模型。界面处的关键过程,如 DNA 链部分电荷的屏蔽以及 DNA 链相对于纳米线的角度的影响,是通过界面处带电分子的 Metropolis 蒙特卡罗算法进行计算的。为了研究器件的传感机制,我们计算了电流-电压特性、静电势以及电子和空穴的浓度。我们发现与测量结果非常吻合,并确定了最佳的器件参数。我们的方法提供了研究器件灵敏度的能力,这对于可靠的传感至关重要。