使用介电金属涂层纳米纤维垫进行纳米颗粒捕获流动的概念证明。

IF 2.5 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
ELECTROPHORESIS Pub Date : 2025-08-31 DOI:10.1002/elps.70019
Tonoy K Mondal, Christian Baryla, Hannah Stanley, Stuart J Williams
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引用次数: 0

摘要

虽然传统的介电泳方法用于纳米颗粒富集和过滤是通用的和选择性的,但它们难以处理高通量的应用。为了解决这一挑战并加强介电电泳的实际应用,我们提出了一种创新的多孔夹层纳米纤维电极设计。该电极是通过简单的工艺制备的,其中包括直径为216±28 nm,垫厚约70 μ m的纳米纤维的静电纺丝,然后在两侧沉积薄的铬/金层(约140 nm厚)。这个过程确保电极之间不会发生电短路,并保持7.19 Ω/□的片电阻。由此产生的显著电场梯度能够捕获直径为100 nm和40 nm的纳米颗粒。该结构的亚微米特征和大的活性表面积允许以3.6 mL/h的流速捕获纳米颗粒。为了评价施加电压和体积流量的影响,我们分别进行了恒定电压变化流量和恒定流量变化电压的实验。我们的研究结果表明,在较高的交流电压下,捕获性能得到改善,但在较高的流量下,捕获性能下降。这些见解对于优化大规模纳米颗粒富集和过滤的参数至关重要。这项关于纳米颗粒介质电泳流动的概念验证研究为在实际环境中适用于大规模样品处理和更高通量/分离效率的设备铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Proof of Concept for Flow Through Nanoparticle Trapping Using a Dielectrophoretic Metal-Coated Nanofiber Mat.

While traditional dielectrophoretic methods for nanoparticle enrichment and filtration are versatile and selective, they struggle to handle higher throughput applications. To address this challenge and enhance the practical application of dielectrophoresis, we propose an innovative design for porous sandwiched nanofiber electrodes. The electrode is fabricated through a simple process involving the electrospinning of nanofibers with a diameter of 216 ± 28 nm and mat thickness of around 70 µm, followed by the deposition of a thin chromium/gold layer (approximately 140 nm thick) on both sides. This process ensures no electrical short circuit occurs between the electrodes, and it maintains a sheet resistance of 7.19 Ω/□. The resulting significant electric field gradients are capable of trapping nanoparticles with diameters of 100 nm and 40 nm. The structure's sub-micrometer features and large active surface area allow for trapping of nanoparticles at a flow rate of 3.6 mL/h. To evaluate the effects of applied voltage and volumetric flow rate, we conducted experiments with constant voltage while varying the flow rate and constant flow rate while varying the voltage. Our findings indicate that trapping performance improves with higher AC voltage but decreases at higher flow rates. These insights are crucial for optimizing parameters for large-scale nanoparticle enrichment and filtration. This proof-of-concept study for flow through dielectrophoresis of nanoparticles paves the way for a device suitable for large-scale sample processing and higher throughput/separation efficiency in practical settings.

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来源期刊
ELECTROPHORESIS
ELECTROPHORESIS 生物-分析化学
CiteScore
6.30
自引率
13.80%
发文量
244
审稿时长
1.9 months
期刊介绍: ELECTROPHORESIS is an international journal that publishes original manuscripts on all aspects of electrophoresis, and liquid phase separations (e.g., HPLC, micro- and nano-LC, UHPLC, micro- and nano-fluidics, liquid-phase micro-extractions, etc.). Topics include new or improved analytical and preparative methods, sample preparation, development of theory, and innovative applications of electrophoretic and liquid phase separations methods in the study of nucleic acids, proteins, carbohydrates natural products, pharmaceuticals, food analysis, environmental species and other compounds of importance to the life sciences. Papers in the areas of microfluidics and proteomics, which are not limited to electrophoresis-based methods, will also be accepted for publication. Contributions focused on hyphenated and omics techniques are also of interest. Proteomics is within the scope, if related to its fundamentals and new technical approaches. Proteomics applications are only considered in particular cases. Papers describing the application of standard electrophoretic methods will not be considered. Papers on nanoanalysis intended for publication in ELECTROPHORESIS should focus on one or more of the following topics: • Nanoscale electrokinetics and phenomena related to electric double layer and/or confinement in nano-sized geometry • Single cell and subcellular analysis • Nanosensors and ultrasensitive detection aspects (e.g., involving quantum dots, "nanoelectrodes" or nanospray MS) • Nanoscale/nanopore DNA sequencing (next generation sequencing) • Micro- and nanoscale sample preparation • Nanoparticles and cells analyses by dielectrophoresis • Separation-based analysis using nanoparticles, nanotubes and nanowires.
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