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光镊微流变学描绘缠结聚合物中应变诱导局部不均匀性的动力学。

Optical Tweezers Microrheology Maps the Dynamics of Strain-Induced Local Inhomogeneities in Entangled Polymers.

作者信息

Khan Manas, Regan Kathryn, Robertson-Anderson Rae M

机构信息

Department of Physics and Biophysics, University of San Diego, San Diego, California 92110, USA.

Department of Physics, Indian Institute of Technology Kanpur, Kanpur 208016, India.

出版信息

Phys Rev Lett. 2019 Jul 19;123(3):038001. doi: 10.1103/PhysRevLett.123.038001.

Abstract

Optical tweezers microrheology (OTM) offers a powerful approach to probe the nonlinear response of complex soft matter systems, such as networks of entangled polymers, over wide-ranging spatiotemporal scales. OTM can also uniquely characterize the microstructural dynamics that lead to the intriguing nonlinear rheological properties that these systems exhibit. However, the strain in OTM measurements, applied by optically forcing a microprobe through the material, induces network inhomogeneities in and around the strain path, and the resultant flow field complicates the measured response of the system. Through a robust set of custom-designed OTM protocols, coupled with modeling and analytical calculations, we characterize the time-varying inhomogeneity fields induced by OTM measurements. We show that homogenization following strain does not interfere with the intrinsic stress relaxation dynamics of the system, rather it manifests as an independent component in the stress decay, even in highly nonlinear regimes such as with the microrheological large-amplitude-oscillatory-shear (MLAOS) protocols we introduce. Our specific results show that Rouse-like elastic retraction, rather than disentanglement and disengagement, dominates the nonlinear stress relaxation of entangled polymers at micro- and mesoscales. Thus, our study opens up possibilities of performing precision nonlinear microrheological measurements, such as MLAOS, on a wide range of complex macromolecular systems.

摘要

光镊微流变学(OTM)提供了一种强大的方法,可在广泛的时空尺度上探测复杂软物质系统(如缠结聚合物网络)的非线性响应。OTM还可以独特地表征导致这些系统呈现出有趣的非线性流变特性的微观结构动力学。然而,OTM测量中的应变是通过光学方式迫使微探针穿过材料施加的,这会在应变路径及其周围引起网络不均匀性,并且由此产生的流场会使系统的测量响应变得复杂。通过一套强大的定制设计的OTM协议,结合建模和分析计算,我们表征了OTM测量引起的随时间变化的不均匀性场。我们表明,应变后的均匀化不会干扰系统的固有应力松弛动力学,相反,即使在我们引入的微流变大幅度振荡剪切(MLAOS)协议等高度非线性 regime 中,它也表现为应力衰减中的一个独立分量。我们的具体结果表明,在微观和中观尺度上,类似Rouse的弹性回缩而非解缠和解结主导了缠结聚合物的非线性应力松弛。因此,我们的研究为在广泛的复杂大分子系统上进行精确的非线性微流变测量(如MLAOS)开辟了可能性。

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