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Theoretical Analysis for Bending of Single-Stranded DNA Adsorption on Microcantilever Sensors

机译:微悬臂梁传感器单链DNA吸附弯曲的理论分析

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摘要

An energy-based model is presented to establish the bending deformation of microcantilever beams induced by single-stranded DNA (ssDNA) adsorption. The total free energy of the DNA-microcantilever sensor was obtained by considering the excluded-volume energy and the polymer stretching energy of DNA chains from mean-field theory, and the mechanical energy of three non-biological layers. The radius of curvature and deflection of the cantilever were determined through the minimum principle of energy. The efficiency of the present model was confirmed through comparison with experimental data. The effects of length, grafting density, salt concentration, thickness, and elastic modulus of substrate on tip deflections are also discussed in this paper. These factors can significantly affect the deflections of the biosensor. This work demonstrates that it is useful to develop a theoretical model for the label-free nanomechanical detection technique.
机译:提出了基于能量的模型,以建立单链DNA(ssDNA)吸附引起的微悬臂梁的弯曲变形。 DNA微悬臂梁传感器的总自由能是通过考虑平均场理论中DNA链的排他体积能和聚合物拉伸能以及三个非生物层的机械能而获得的。悬臂的曲率半径和偏转是通过最小能量原理确定的。通过与实验数据的比较证实了本模型的效率。本文还讨论了长度,接枝密度,盐浓度,厚度和基底弹性模量对尖端变形的影响。这些因素会严重影响生物传感器的变形。这项工作表明,为无标记的纳米机械检测技术建立理论模型是有用的。

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