Atakhorrami M, Sulkowska J I, Addas K M, Koenderink G H, Tang J X, Levine A J, Mackintosh F C, Schmidt C F
Vrije Universiteit, Department of Physics and Astronomy and Laser Center, de Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.
Phys Rev E Stat Nonlin Soft Matter Phys. 2006 Jun;73(6 Pt 1):061501. doi: 10.1103/PhysRevE.73.061501. Epub 2006 Jun 2.
The Brownian motions of microscopic particles in viscous or viscoelastic fluids can be used to measure rheological properties. This is the basis of recently developed one- and two-particle microrheology techniques. For increased temporal and spatial resolution, some microrheology techniques employ optical traps, which introduce additional forces on the particles. We have systematically studied the effect that confinement of particles by optical traps has on their auto- and cross-correlated fluctuations. We show that trapping causes anticorrelations in the motion of two particles at low frequencies. We demonstrate how these anticorrelations depend on trap strength and the shear modulus of viscoelastic media. We present a method to account for the effects of optical traps, which permits the quantitative measurement of viscoelastic properties in one- and two-particle microrheology over an extended frequency range in a variety of viscous and viscoelastic media.
粘性或粘弹性流体中微观粒子的布朗运动可用于测量流变特性。这是最近开发的单粒子和双粒子微观流变技术的基础。为了提高时间和空间分辨率,一些微观流变技术采用了光阱,光阱会给粒子施加额外的力。我们系统地研究了光阱对粒子的限制作用对其自相关和互相关涨落的影响。我们表明,在低频下,捕获会导致两个粒子运动的反相关。我们展示了这些反相关如何依赖于阱强度和粘弹性介质的剪切模量。我们提出了一种考虑光阱影响的方法,该方法允许在各种粘性和粘弹性介质中的扩展频率范围内,对单粒子和双粒子微观流变中的粘弹性特性进行定量测量。