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通过结合小角中子散射、成像和电导率测量来探测从纳米到毫米尺度的泡沫。

Probing foams from the nanometer to the millimeter scale by coupling small-angle neutron scattering, imaging, and electrical conductivity measurements.

作者信息

Lamolinairie Julien, Dollet Benjamin, Bridot Jean-Luc, Bauduin Pierre, Diat Olivier, Chiappisi Leonardo

机构信息

Institut Max von Laue - Paul Langevin (ILL), 71 Avenue des Martyrs, 38042 Grenoble, France.

Université Grenoble Alpes, CNRS, LIPhy, 38000 Grenoble, France.

出版信息

Soft Matter. 2022 Nov 30;18(46):8733-8747. doi: 10.1039/d2sm01252a.

Abstract

Liquid foams are multi-scale structures whose structural characterization requires the combination of very different techniques. This inherently complex task is made more difficult by the fact that foams are also intrinsically unstable systems and that their properties are highly dependent on the production protocol and sample container. To tackle these issues, a new device has been developed that enables the simultaneous time-resolved investigation of foams by small-angle neutron scattering (SANS), electrical conductivity, and bubbles imaging. This device allows the characterization of the foam and its aging from nanometer up to centimeter scale in a single experiment. A specific SANS model was developed to quantitatively adjust the scattering intensity from the dry foam. Structural features such as the liquid fraction, specific surface area of the Plateau borders and inter-bubble films, and thin film thickness were deduced from this analysis, and some of these values were compared with values extracted from the other applied techniques. This approach has been applied to a surfactant-stabilized liquid foam under free drainage and the underlying foam destabilization mechanisms were discussed with unprecedented detail. For example, the information extracted from the image analysis and SANS data allows for the first time to determine the disjoining pressure thickness isotherm in a real, draining foam.

摘要

液体泡沫是多尺度结构,其结构表征需要结合非常不同的技术。泡沫本质上也是不稳定的系统,并且它们的性质高度依赖于生产协议和样品容器,这使得这项本质上复杂的任务变得更加困难。为了解决这些问题,已经开发了一种新设备,该设备能够通过小角中子散射(SANS)、电导率和气泡成像对泡沫进行同时的时间分辨研究。该设备允许在单个实验中从纳米到厘米尺度对泡沫及其老化进行表征。开发了一个特定的SANS模型来定量调整来自干泡沫的散射强度。通过该分析推导出了诸如液体分数、Plateau边界和气泡间薄膜的比表面积以及薄膜厚度等结构特征,并将其中一些值与从其他应用技术中提取的值进行了比较。这种方法已应用于自由排水下的表面活性剂稳定的液体泡沫,并以前所未有的细节讨论了潜在的泡沫失稳机制。例如,从图像分析和SANS数据中提取的信息首次使得能够确定真实排水泡沫中的分离压力-厚度等温线。

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