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Enhancing the performance of micro-biosensors by functionally graded geometrical and material parameters

机译:通过功能分级几何和材料参数提高微生物传感器的性能

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Most recently, the whole world is struggling against the virulent pandemic COVID-19. Due to the unbounded global spread of the disease, having biosensors with high performance such as high sensitivity and accuracy is of utmost importance. In this paper, the effects of various parameters on the behaviors of micro-biosensors are investigated in order to enhance their performance. These parameters are related to the geometry and material, and they are assumed to be gradually changing in the longitudinal direction of the biosensor according to a power law. Therefore, they are called functionally graded geometrical and material parameters. Another aspect is when considering microcantilever-based biosensors, the main behavior parameter is the deflection at the free end. In the analyses, the influences of the surface stress and van der Waals intermolecular forces are taken into account. Also, the total energy of the beam, which is the combination of the van der Waals energy and the elastic strain energy, is accomplished. In addition, the equivalent force causing the deflection is also evaluated using Castigliano method for two cases. These cases account for a concentrated force at the free end and a distributed load along the biosensor, respectively. Since the governing equations account for the size dependency and the considered parameters are functions of the position, the solution is too complex to be achieved analytically, and therefore, numerical methods are applied. For uniform biosensors made of homogeneous materials, or in other words when all parameters are not varying with the position, the obtained results are compared with those in the literature, and good agreement is obtained. On the other hand, the performance, which include sensitivity and limit of detection, of functionally graded biosensors can be enhanced by proper choices of the considered parameters and the corresponding exponent of the gradation function.
机译:最近,全世界都在努力对抗毒性大流行covid-19。由于疾病的无限性全球传播,具有高性能的生物传感器,如高灵敏度和精度都是至关重要的。在本文中,研究了各种参数对微生物传感器的行为的影响,以提高它们的性能。这些参数与几何形状和材料有关,并且假设根据权力法在生物传感器的纵向方向上逐渐变化。因此,它们被称为功能渐变的几何和材料参数。另一方面是在考虑基于微电子的生物传感器时,主要行为参数是自由端的偏转。在分析中,考虑了表面应力和范德瓦尔斯分子间力的影响。而且,完成了梁的总能量,即van der瓦尔斯能量和弹性应变能量的组合。此外,还使用Castigliano方法评估导致偏转的等效力,用于两种情况。这些案例分别占自由端的浓缩力和沿生物传感器的分布式负载。由于控制方程对尺寸依赖性和所考虑的参数是位置的功能,因此解决方案太复杂,以分析地实现,因此,应用数值方法。对于由均匀材料制成的均匀生物传感器,或换句话说,当所有参数没有随着位置而变化时,将获得的结果与文献中的结果进行比较,并且获得了良好的一致性。 On the other hand, the performance, which include sensitivity and limit of detection, of functionally graded biosensors can be enhanced by proper choices of the considered parameters and the corresponding exponent of the gradation function.

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