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磁场操控流致沉淀膜管生长。

Magnetic-Field-Manipulated Growth of Flow-Driven Precipitate Membrane Tubes.

机构信息

Department of Physical Chemistry and Materials Science, University of Szeged, Rerrich Béla tér 1., Szeged, 6720, Hungary.

Interdisciplinary Excellence Center, Department of Applied and Environmental Chemistry, University of Szeged, Rerrich Béla tér 1., Szeged, 6720, Hungary.

出版信息

Chemistry. 2019 Nov 22;25(65):14826-14833. doi: 10.1002/chem.201902830. Epub 2019 Oct 9.

Abstract

Chemobrionics is an emerging scientific field focusing on the coupling of chemical reactions and different forms of motion, that is, transport processes. Numerous phenomena appearing in various gradient fields, for example, pH, concentration, temperature, and so on, are thoroughly investigated to mimic living systems in which spatial separation plays a major role in proper functioning. In this context, chemical garden experiments have received increased attention because they inherently involve membrane formation and various transport processes. In this work, a noninvasive external magnetic field was applied to gain control over the directionality of membrane structures obtained by injecting one reactant solution into the other in a three-dimensional domain. The geometry of the resulted patterns was quantitatively characterized as a function of the injection rate and the magnitude of magnetic induction. The magnetic field was proven to influence the microstructure of precipitate tubes by diminishing spatial defects.

摘要

化学生物电子学是一个新兴的科学领域,专注于化学反应和不同形式的运动(即传输过程)的耦合。人们深入研究了各种梯度场中出现的众多现象,例如 pH 值、浓度、温度等,以模拟在生命系统中,空间分离对正常运作起着主要作用。在这种情况下,化学花园实验受到了越来越多的关注,因为它们本质上涉及到膜的形成和各种传输过程。在这项工作中,施加了非侵入性的外部磁场,以控制通过将一种反应物溶液注入三维区域中的另一种反应物溶液来获得的膜结构的方向性。作为注入速率和磁感应强度的函数,定量地表征了所得图案的几何形状。证明磁场可以通过减少空间缺陷来影响沉淀管的微观结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb58/6899770/e20cb1936401/CHEM-25-14826-g001.jpg

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