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Active microrheology using a two-particle system coupled by hydrodynamic interactions in optical tweezers

机译:使用光学镊子的流体动力学相互作用耦合的双粒子系统有源微流学

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Two-point microrheology measurement from widely separated colloids can reveal the bulk rheological property of a fluid. We develop such a technique which measures the effective viscosity using two trapped particles in a dual trap optical tweezers by exploiting the motional resonance excited in the probe particle when the control particle is driven externally. We carry out the measurement both from the amplitude and the phase response of the resonance and show that the zero-crossing of the phase with respect to the drive signal at the resonance frequency gives more accurate results when the particles are separated widely. Later on, we compare our measured viscosity values with that measured using a commercial rheometer and obtain an agreement within~1 %. In future, this method can be extended to a linear viscoelastic fluid enabling high accuracy measurements.
机译:来自广泛分离的胶体的两点微流理测量可以揭示流体的散装流变性。我们开发了这种技术,通过利用在外部驱动控制颗粒时,通过利用探针粒子中激发的运动共振来测量使用两种被捕获的粒子的有效粘度。我们从谐振的幅度和相位响应进行测量,并表明当颗粒被广泛分离时,相对于共振频率的驱动信号的零交叉提供更准确的结果。后来,我们将测量的粘度值与使用商业流变仪测量的测量值进行比较,并在〜1%内获得协议。未来,该方法可以扩展到直线粘弹性流体,从而实现高精度测量。

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