首页> 外文会议>Fluids Engineering Conference >ELECTROHYDRODYNAMICS AND SURFACE FORCE ANALYSIS IN AFM IMAGING OF A CHARGED, DEFORMABLE BIOLOGICAL MEMBRANE IN A DILUTE ELECTROLYTE SOLUTION
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ELECTROHYDRODYNAMICS AND SURFACE FORCE ANALYSIS IN AFM IMAGING OF A CHARGED, DEFORMABLE BIOLOGICAL MEMBRANE IN A DILUTE ELECTROLYTE SOLUTION

机译:稀释电解质溶液中带电,可变形生物膜的AFM成像中的电液动力学和表面力分析

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摘要

Surface forces arising in AFM imaging of a deformable, negatively charged biological membrane in an electrolyte solution are investigated in the limit of continuous electrohy drodynamics. Specifically, we extend our previous analysis of purely hydrodynamic interactions between an AFM tip and the elastic cell membrane by accounting for electric double-layer forces under the assumption of a dilute electroyte solution and local electrochemical equilibrium. The solution of the problem is obtained by integrating the quasi-steady. electrically-forced Stokes equation for the electrohy drodynamic field, the linearized Poisson-Boltzmann equation for the electrostatic field in the electrolyte inside and outside of the cell, and the Laplace equation for the electrostatic field within a dielectric AFM tip. The Helfrich and Zhong-ean's equation for an equilibrium shape of the cell membrane is employed as a quasi-steady, nonlinear boundary condition linking the stress fields on both sides of the cell membrane augmented by the local membrane incompressibility condition in order to find the local tension/compression force acting on the membrane. For the first time, an integrated framework for the dynamic coupling of the membrane double-layer effects and the AFM tip-electrolyte-membrane motion is established that allows for characterizing of the local electrolyte flow field, the electrostatic field, the elastic deformation of the membrane, and the electrohydrodynamic surface force acting on the AFM tip in great detail. The results of the analysis provide information on the motion of the membrane and the surface forces induced by both an electrolyte motion and the Maxwell stresses resulting from the charge double-layer screening effect for a full cycle motion of the AFM tip in a non-contact mode imaging of the cell membrane.
机译:在连续电动水动力的极限范围内,研究了在电解质溶液中可变形的带负电荷的生物膜在AFM成像中产生的表面力。具体而言,我们在考虑稀电解质溶液和局部电化学平衡的前提下,通过考虑双电层作用力来扩展AFM尖端与弹性细胞膜之间的纯粹流体动力相互作用的先前分析。该问题的解决方案是通过积分拟稳态获得的。电动Stokes方程用于电水动力场,线性化Poisson-Boltzmann方程用于电池内部和外部电解质的静电场,Laplace方程用于介电AFM尖端内的静电场。利用细胞膜平衡形状的Helfrich和Zhong-ean方程作为准稳定的非线性边界条件,该条件将细胞膜两侧的应力场与局部膜不可压缩条件增加了联系,从而找到了局部作用在膜上的拉力/压缩力。首次建立了用于膜双层效应与AFM尖端电解质膜运动的动态耦合的集成框架,该框架可用于表征局部电解质流场,静电场,膜的弹性变形。膜,以及作用在AFM尖端上的电动流体表面力的详细信息。分析的结果提供了有关膜的运动以及由电解质运动和麦克斯韦应力引起的表面力的信息,该表面力是由非接触式AFM尖端的全周期运动的电荷双层屏蔽效应产生的细胞膜的模式成像。

著录项

  • 来源
    《Fluids Engineering Conference》|2003年|p.395-403|共9页
  • 会议地点 Honolulu HI(US);Honolulu HI(US)
  • 作者

    Tai-Hsi Fan; Andrei G. Fedorov;

  • 作者单位

    Multiscale Integrated Thermofluidics Lab. G. W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta, Georgia, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 一般工业技术;
  • 关键词

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