聚丙烯酸酯凝胶中化学-机械相边界的扩展

IF 4.1 2区 化学 Q2 POLYMER SCIENCE Polymer Pub Date : 2025-01-08 DOI:10.1016/j.polymer.2025.128039
Dikla Kolan, Susan Kozawa, Dmitrii Weitzer, Gary Wnek, Matan Mussel
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引用次数: 0

摘要

聚电解质凝胶中一价和二价反离子之间的竞争可以导致肿胀相和塌陷相之间的可逆转变。在这项研究中,我们研究了在圆柱形聚丙烯酸酯凝胶中分离两相的传播边界的出现,在那里它沿着凝胶的纵轴移动。我们强调整体钙诱导收缩和轴向进展现象之间的区别,并使用目标检测算法来确定边界传播速率。此外,我们还研究了钙浓度、外部电压和凝胶直径对相边界形成时间和传播速度的影响。我们的研究结果表明,相邻槽中钙浓度的增加、外部电压的施加以及凝胶直径的减小有助于缩短相边界的形成时间和提高相边界的传播速度。这些结果为柱状聚电解质凝胶中相边界的复杂动力学提供了重要的见解。
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Propagation of a Chemo-Mechanical Phase Boundary in Polyacrylate Gels
The competition between mono- and divalent counterions in polyelectrolyte gels can lead to reversible transitions between swollen and collapsed phases. In this study, we investigate the emergence of a propagating boundary that separates the two phases in cylindrical polyacrylate gels, where it moves along the gel's longitudinal axis. We emphasize the distinction between an overall calcium-induced contraction and the axial progression phenomenon and use an object detection algorithm to determine the boundary propagation rate. Additionally, we investigate how calcium concentration, external voltage, and gel diameter influence the formation time and propagation velocity of the phase boundary. Our findings reveal that an increased calcium concentration in the adjacent bath, the application of an external voltage, and a decreased gel diameter contribute to a shorter formation time and a higher propagation velocity of the phase boundary. These results provide important insights into the complex dynamics of phase boundaries in cylindrical polyelectrolyte gels.
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来源期刊
Polymer
Polymer 化学-高分子科学
CiteScore
7.90
自引率
8.70%
发文量
959
审稿时长
32 days
期刊介绍: Polymer is an interdisciplinary journal dedicated to publishing innovative and significant advances in Polymer Physics, Chemistry and Technology. We welcome submissions on polymer hybrids, nanocomposites, characterisation and self-assembly. Polymer also publishes work on the technological application of polymers in energy and optoelectronics. The main scope is covered but not limited to the following core areas: Polymer Materials Nanocomposites and hybrid nanomaterials Polymer blends, films, fibres, networks and porous materials Physical Characterization Characterisation, modelling and simulation* of molecular and materials properties in bulk, solution, and thin films Polymer Engineering Advanced multiscale processing methods Polymer Synthesis, Modification and Self-assembly Including designer polymer architectures, mechanisms and kinetics, and supramolecular polymerization Technological Applications Polymers for energy generation and storage Polymer membranes for separation technology Polymers for opto- and microelectronics.
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