从zeta 电位调制的 Nafion 纳米结构中的径向到单向水泵送。

From radial to unidirectional water pumping in zeta-potential modulated Nafion nanostructures.

机构信息

Catalan Institute of Nanoscience and Nanotechnology (ICN2), CSIC and BIST, Campus UAB, Bellaterra, 08193, Barcelona, Spain.

Departament de Física de la Matèria Condensada, Universitat de Barcelona, C/Martí i Franquès 1, 08028, Barcelona, Spain.

出版信息

Nat Commun. 2022 May 19;13(1):2812. doi: 10.1038/s41467-022-30554-7.

Abstract

Chemically propelled micropumps are promising wireless systems to autonomously drive fluid flows for many applications. However, many of these systems are activated by nocuous chemical fuels, cannot operate at high salt concentrations, or have difficulty for controlling flow directionality. In this work we report on a self-driven polymer micropump fueled by salt which can trigger both radial and unidirectional fluid flows. The micropump is based on the cation-exchanger Nafion, which produces chemical gradients and local electric fields capable to trigger interfacial electroosmotic flows. Unidirectional pumping is predicted by simulations and achieved experimentally by nanostructuring Nafion into microarrays with a fine tune modulation of surrounding surface zeta potentials. Nafion micropumps work in a wide range of salt concentrations, are reusable, and can be fueled by different salt cations. We demonstrate that they work with the common water-contaminant cadmium, using the own capture of this ion as fuel to drive fluid pumping. Thus, this system has potential for efficient and fast water purification strategies for environmental remediation. Unidirectional Nafion pumps also hold promise for effective analyte delivery or preconcentration for (bio)sensing assays.

摘要

化学推进的微泵是一种很有前途的无线系统,可以自主驱动多种应用的流体流动。然而,这些系统中的许多是由有害的化学燃料激活的,无法在高盐浓度下运行,或者难以控制流动方向。在这项工作中,我们报告了一种由盐驱动的自驱动聚合物微泵,它可以触发径向和单向的流体流动。微泵基于阳离子交换剂 Nafion,它产生化学梯度和局部电场,能够触发界面电动流。通过模拟预测单向泵送,并通过将 Nafion 纳米结构化微阵列并精细调节周围表面 ζ 电位来实验实现。Nafion 微泵在广泛的盐浓度范围内工作,可重复使用,并可使用不同的盐阳离子作为燃料。我们证明它们可以与常见的水污染物镉一起工作,利用该离子的自身捕获作为燃料来驱动流体泵送。因此,该系统具有用于环境修复的高效和快速水净化策略的潜力。单向 Nafion 泵也有望用于(生物)传感分析中的有效分析物输送或预浓缩。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67f4/9120507/da2542d20ac9/41467_2022_30554_Fig1_HTML.jpg

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