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SINGLE MICROBUBBLE MEASUREMENTS OF LIPID MONOLAYER VISCOELASTIC PROPERTIES FOR SMALL AMPLITUDE OSCILLATIONS

机译:小幅度振荡的脂类单分子层粘弹性特性的单微泡测量

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摘要

Lipid monolayer rheology plays an important role in a variety of interfacial phenomena, the physics of biological membranes, and the dynamic response of acoustic bubbles and drops. We show here measurements of lipid monolayer elasticity and viscosity for very small strains at megahertz frequency. Individual plasmonic microbubbles of 2-6 μm radius were photothermally activated with a short laser pulse, and the subsequent nanometer-scale radial oscillations during ring-down were monitored by optical scatter. This method provided average dynamic response measurements of single microbubbles. Each microbubble was modeled as an underdamped, linear oscillator to determine the damping ratio and eigenfrequency, and thus the lipid monolayer viscosity and elasticity. Our non-isothermal measurement technique revealed viscoelastic trends for different lipid shell compositions. We observed a significant increase in surface elasticity with lipid acyl chain length for 16 to 20 carbons, and this effect was explained by an intermolecular forces model that accounts for lipid composition, packing and hydration. The surface viscosity was found to be equivalent for these lipid shells. We also observed an anomalous decrease in elasticity and increase in viscosity when increasing the acyl chain length from 20 to 22 carbons. These results illustrate the use of a novel nondestructive optical technique to investigate lipid monolayer rheology in new regimes of frequency and strain, possibly elucidating phase behavior, as well as how the dynamic response of a microbubble can be tuned by the lipid intermolecular forces.
机译:脂质单层流变学在各种界面现象,生物膜的物理学以及声泡和液滴的动态响应中起着重要作用。我们在这里显示了兆赫兹频率下非常小的菌株的脂质单层弹性和粘度的测量值。半径为2-6μm的单个等离子微气泡通过短激光脉冲进行光热激活,并通过光散射监测振铃过程中随后的纳米级径向振荡。该方法提供了单个微气泡的平均动态响应测量。将每个微气泡建模为欠阻尼线性振荡器,以确定阻尼比和本征频率,从而确定脂质单层的粘度和弹性。我们的非等温测量技术揭示了不同脂质壳成分的粘弹性趋势。我们观察到脂质酰基链长度在16到20个碳原子上的表面弹性显着增加,并且这种作用可以通过解释脂质组成,堆积和水合作用的分子间力模型来解释。发现这些脂质壳的表面粘度相等。我们还观察到,当酰基链长度从20个碳增加到22个碳时,弹性异常降低,粘度增加。这些结果说明了使用新的非破坏性光学技术在新的频率和应变范围内研究脂质单层流变学,可能阐明了相行为,以及如何通过脂质分子间力来调节微泡的动态响应。

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