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An algorithm for three-dimensional Monte-Carlo simulation of charge distribution at biofunctionalized surfaces

机译:一种三维蒙特卡罗算法模拟的电荷分布biofunctionalized表面

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In this work, a Monte-Carlo algorithm in the constant-voltage ensemble for the calculation of 3d charge concentrations at charged surfaces functionalized with biomolecules is presented. The motivation for this work is the theoretical understanding of biofunctionalized surfaces in nanowire field-effect biosensors (BioFETs). This work provides the simulation capability for the boundary layer that is crucial in the detection mechanism of these sensors; slight changes in the charge concentration in the boundary layer upon binding of analyte molecules modulate the conductance of nanowire transducers. The simulation of biofunctionalized surfaces poses special requirements on the Monte-Carlo simulations and these are addressed by the algorithm. The constant-voltage ensemble enables us to include the right boundary conditions; the dna strands can be rotated with respect to the surface; and several molecules can be placed in a single simulation box to achieve good statistics in the case of low ionic concentrations relevant in experiments. Simulation results are presented for the leading example of surfaces functionalized with pna and with single- and double-stranded dna in a sodium-chloride electrolyte. These quantitative results make it possible to quantify the screening of the biomolecule charge due to the counter-ions around the biomolecules and the electrical double layer. The resulting concentration profiles show a three-layer structure and non-trivial interactions between the electric double layer and the counter-ions. The numerical results are also important as a reference for the development of simpler screening models.
机译:在这项工作中,蒙特卡罗算法的恒压计算的合奏3 d在带电表面电荷浓度携带生物分子。这个工作的动机理论理解biofunctionalized表面纳米线场效应传感器(BioFETs)。工作提供的模拟能力边界层的检测是至关重要的这些传感器的机理;电荷浓度边界层绑定的分析物分子调节纳米线传感器的电导。模拟biofunctionalized表面构成在蒙特卡罗的特殊要求模拟和解决的算法。我们包括正确的边界条件;可以旋转的dna链表面;单一的模拟盒子能达到良好的统计数据在低离子浓度有关在实验。表面的主要例子功能化与机构和单- - -双链dna氯化钠电解液。可以量化的筛查生物分子电荷由于counter-ions生物分子和双电层。由此产生的浓度资料显示三层结构和非平凡的双电层之间的相互作用和counter-ions。同样重要的发展作为参考简单的筛选模型。

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