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Two-point active microrheology in a viscous medium exploiting a motional resonance excited in dual-trap optical tweezers

机译:在粘性介质中的两点活性微流学,利用双陷阱光学镊子激发的运动共振

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摘要

Two-point microrheology measurements from widely separated colloidal particles approach the bulk viscosity of the host medium more reliably than corresponding single-point measurements. In addition, active microrheology offers the advantage of enhanced signal to noise over passive techniques. Recently, we reported the observation of a motional resonance induced in a probe particle in dual-trap optical tweezers when the control particle was driven externally [Paul et al., Phys. Rev. E 96, 050102(R) (2017)]. We now demonstrate that the amplitude and phase characteristics of the motional resonance can be used as a sensitive tool for active two-point microrheology to measure the viscosity of a viscous fluid. Thus,wemeasure the viscosity of viscous liquids from both the amplitude and phase response of the resonance, and demonstrate that the zero crossing of the phase response of the probe particle with respect to the external drive is superior compared to the amplitude response inmeasuring viscosity at large particle separations.We compare our viscosity measurements with those using a commercial rheometer and obtain an agreement ~1%. The method can be extended to viscoelastic material where the frequency dependence of the resonance may provide further accuracy for active microrheological measurements.
机译:来自广泛分离的胶体颗粒的两点微流学测量方法比相应的单点测量更可靠地接近宿主介质的体积粘度。此外,活性微流学提供了通过被动技术的增强信号的优势。最近,我们报道了观察在外部驱动控制颗粒时在双捕集光学镊子中诱导的探针颗粒中的运动共振[Paul等,Phy。 Rev. E 96,050102(R)(2017)]。我们现在表明,运动共振的幅度和相位特性可用作有源两点微流学的敏感工具,以测量粘性流体的粘度。因此,与共振的幅度和相位响应效果,并证明探针颗粒相对于外部驱动的相位响应的零交叉与幅度响应相比,较大的粘度优异粒子分离。我们将粘度测量与使用商业流变仪的人进行比较,并获得协议〜1%。该方法可以扩展到粘弹性材料,其中谐振的频率依赖性可以提供进一步的活性​​微流学测量的准确性。

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