基于功能谐振器的非局部FGP中空吸附剂用于DQM框架的偶联生物分子的广泛检测

IF 2.1 3区 工程技术 Q3 MECHANICS
Mohamed Mektout, Hicham Bourouina, Yahia Maiza, Soumia Khouni, Abir Lamari, Brahim Said Djellali, Lamine Elaihar
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引用次数: 0

摘要

本研究考察了温度诱导载荷下生物分子-谐振器夹层纳米梁系统中由于吸附引起的共振频移。该分析结合了剪切变形、分布原子和非局部弹性理论框架内的小尺度效应。该三明治纳米梁由三部分组成:一个具有均匀方孔图案的穿孔核心和两个粘合的功能梯度多孔(FGP)层。利用基于分布的方法对刺突蛋白和生物受体进行吸附诱导能量建模。纳米梁谐振器的动力学模型考虑了表面应力效应。功能纳米束和局部生物分子模型与范德华力(vdW)结合使用,采用Lennard-Jones(6-12)和Morse势评估所有影响因素。剪力和惯性矩由非局部Timoshenko梁方程明确导出,残余应力被认为是额外的轴向载荷。采用Navier技术和微分积分法(DQM)求解运动方程,使结果得到全面的解释。数值结果表明,表面性质、吸附的附着原子、射孔尺寸、孔数、热载荷、幂律指数变化、孔隙度参数以及受体和尖峰的位置都会影响频率漂移。结果进一步表明,原子间相互作用降低了系统刚度,强调了它们在计算分析中的重要性。所提出的模型有效地评估了生物分子共振器的动态响应,并可以确定病毒和尖峰的质量和密度,同时考虑到附原子键合效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Functional resonator-based nonlocal FGP hollow adsorber for wide detection of coupled biomolecules using DQM framework

This study examines the resonance frequency shift due to adsorption in a biomolecule-resonator sandwich nanobeam system under a temperature-induced load. The analysis incorporates shear deformation, distributed adatoms, and small-scale effects within the framework of nonlocal elasticity theory (NET). The sandwich nanobeam consists of three sections: a perforated core with a uniform square-hole pattern and two bonded functionally graded porous (FGP) layers. Adsorption-induced energy is modeled using a distribution-based approach for spike proteins and bio-receptors. The dynamic model of the nanobeam resonator integrates surface stress effects. The functional nanobeam and localized biomolecule models are used in conjunction with van der Waals (vdW) forces, employing the Lennard–Jones (6–12) and Morse potentials to assess all influencing factors. Shear force and inertia moment are explicitly derived from the nonlocal Timoshenko beam equations, with residual stress considered as an additional axial load. The Navier technique and differential quadrature method (DQM) are employed to solve the motion equations, enabling a comprehensive interpretation of the results. Numerical findings reveal that surface properties, adsorbed adatoms, perforation dimensions, hole number, thermal loads, variation in power law index, porosity parameters, and the positioning of receptors and spikes all influence the frequency shift. Results further indicate that interatomic interactions reduce system stiffness, emphasizing their significance in computational analysis. The proposed model effectively evaluates the dynamic response of biomolecule-resonators and can determine the mass and density of viruses and spikes while accounting for adatom bonding effects.

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来源期刊
Meccanica
Meccanica 物理-力学
CiteScore
4.70
自引率
3.70%
发文量
151
审稿时长
7 months
期刊介绍: Meccanica focuses on the methodological framework shared by mechanical scientists when addressing theoretical or applied problems. Original papers address various aspects of mechanical and mathematical modeling, of solution, as well as of analysis of system behavior. The journal explores fundamental and applications issues in established areas of mechanics research as well as in emerging fields; contemporary research on general mechanics, solid and structural mechanics, fluid mechanics, and mechanics of machines; interdisciplinary fields between mechanics and other mathematical and engineering sciences; interaction of mechanics with dynamical systems, advanced materials, control and computation; electromechanics; biomechanics. Articles include full length papers; topical overviews; brief notes; discussions and comments on published papers; book reviews; and an international calendar of conferences. Meccanica, the official journal of the Italian Association of Theoretical and Applied Mechanics, was established in 1966.
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