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首页> 外文期刊>ACS applied materials & interfaces >Resistance and Permselectivity of 3D-Printed Micropatterned Anion Exchange Membranes
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Resistance and Permselectivity of 3D-Printed Micropatterned Anion Exchange Membranes

机译:3D印刷微图示阴离子交换膜的电阻和偏移量

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It has been demonstrated that a micropatterned surface can decrease the resistance of anion-exchange membranes (AEMs) and can induce desirable flow properties in devices, such as mixing. Previously, a model that related the resistance of flat and patterned membranes with the same equivalent thickness was proposed, which used the patterned area and thickness ratio of the features to describe the membrane resistance. Here, we explored the validity of the parallel resistance model for a variety of membrane surface designs and area ratios. We demonstrated that the model can predict the resistance of a wide range of patterned AEMs. We showed that the resistance is independent of the spatial ordering of the design by examining random patterns, which is relevant for applications that require, for example, increased mixing in multilayered devices. Some experimental values of resistance obtained for patterned membranes presented deviations from the model. Scanning electron microscopy (SEM) images of the patterned membranes revealed resolution variations and pattern replication errors due to the stereolithographic process. A geometric correction of the target ratios improved the fit of the modeled data to the experimental values, showing that light bleeding during curing was a source of error. Two additional experimental factors were not accounted for in the model: a distinct interface between the bottom and top layer and overcuring of the bottom layer during successive steps. These sources of error were investigated by examining the resistance of single- and double-layered membranes, as well as single-layer membranes with different curing times. The differences obtained in the resistances for control samples demonstrated that both the interface and the overcuring influenced the resistance of the membrane. The results obtained in this study enlighten the discussion relating membrane-surface morphology and transport properties, as well as the optimization of 3D-printed membranes using a stereolithography process.
机译:已经证明,微图案化表面可以降低阴离子交换膜(AEM)的阻力,并且可以在诸如混合的装置中诱导所需的流动性质。以前,提出了一种与具有相同等效厚度相同厚度的平板和图案化膜的电阻的模型,其使用特征的图案化区域和厚度比来描述膜抗性。在这里,我们探讨了各种膜表面设计和面积比的并联电阻模型的有效性。我们证明该模型可以预测各种图案化艾美的阻力。我们认为,通过检查随机图案,电阻与设计的空间排序无关,这与需要的应用程序,例如,在多层设备中增加混合。用于图案化膜的一些抗性实验值呈现与模型的偏差。扫描电子显微镜(SEM)图案化膜的图像显示出由于立体刻录过程引起的分辨率变化和模式复制误差。目标比率的几何校正将建模数据的拟合改进到实验值,显示固化过程中的光出血是误差的源。模型中未占两种额外的实验因素:在连续步骤期间底部和顶层之间的明显界面和底层的过度界面。通过检查单层和双层膜的电阻以及具有不同固化时间的单层膜来研究这些误差来源。对照样品的电阻中获得的差异表明界面和过度覆盖影响影响膜的电阻。本研究中获得的结果启发了诸如使用立体化过程的膜表面形态和运输性能的讨论,以及优化3D印刷膜。

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