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Numerical Modeling and Investigation of Amperometric Biosensors with Perforated Membranes

机译:带孔膜的安培生物传感器的数值建模和研究

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摘要

The present paper aims to investigate the influence of perforated membrane geometry on the performance of biosensors. For this purpose, a 2-D axisymmetric model of an amperometric biosensor is analyzed. The governing equations describing the reaction-diffusion equations containing a nonlinear term related to the Michaelis–Menten kinetics of the enzymatic reaction are introduced. The partial differential governing equations, along with the boundary conditions, are first non-dimensionalized by using appropriate dimensionless variables and then solved in a non-uniform unstructured grid by employing the Galerkin Finite Element Method. To examine the impact of the hole-geometry of the perforated membrane, seven different geometries—including cylindrical, upward circular cone, downward circular cone, upward paraboloid, downward paraboloid, upward concave paraboloid, and downward concave paraboloid—are studied. Moreover, the effects of the perforation level of the perforated membrane, the filling level of the enzyme on the transient and steady-state current of the biosensor, and the half-time response are presented. The results of the simulations show that the transient and steady-state current of the biosensor are affected by the geometry dramatically. Thus, the sensitivity of the biosensor can be influenced by different hole-geometries. The minimum and maximum output current can be obtained from the cylindrical and upward concave paraboloid holes. On the other hand, the least half-time response of the biosensor can be obtained in the cylindrical geometry.
机译:本文旨在研究穿孔膜的几何形状对生物传感器性能的影响。为此,分析了安培生物传感器的二维轴对称模型。引入了描述反应扩散方程的控制方程,该方程包含与酶反应的Michaelis-Menten动力学有关的非线性项。首先使用适当的无量纲变量对偏微分控制方程以及边界条件进行无量纲化,然后通过使用Galerkin有限元方法在非均匀非结构化网格中进行求解。为了检查穿孔膜的孔几何形状的影响,研究了七个不同的几何形状-包括圆柱形,向上圆锥形,向下圆锥形,向上抛物面,向下抛物面,向上凹面抛物面和向下凹面抛物面。此外,提出了穿孔膜的穿孔水平,酶的填充水平对生物传感器的瞬态和稳态电流以及半时响应的影响。仿真结果表明,生物传感器的瞬态和稳态电流受到几何形状的极大影响。因此,生物传感器的灵敏度会受到不同的孔几何形状的影响。最小和最大输出电流可以从圆柱形和向上凹入的抛物面孔获得。另一方面,可以在圆柱几何形状中获得生物传感器的最小半时响应。

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