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Simultaneous Nanolocal Polymer and In Situ Readout Unit Placement in Mesoporous Separation Layers

机译:同时纳米圆形聚合物及其在介孔分离层中的原位读出单位放置

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摘要

Bioinspired solid-state nanopores and nanochannels have attracted interest in the last two decades, as they are envisioned to advance future sensing, energy conversion, and separation concepts. Although much effort has been made regarding functionalization of these materials, multifunctionality and accurate positioning of functionalities with nanoscale precision still remain challenging. However, this precision is necessary to meet transport performance and complexity of natural pores in living systems, which are often based on nonequilibrium states and compartmentalization. In this work, a nanolocal functionalization and simultaneous localized sensing strategy inside a filtering mesoporous film using precisely placed plasmonic metal nanoparticles inside mesoporous films with pore accessibility control is demonstrated. A single layer of gold nanoparticles is incorporated into mesoporous thin films with precise spatial control along the nanoscale layer thickness. The local surface plasmon resonance is applied to induce a photopolymerization leading to a nanoscopic polymer shell around the particles and thus nanolocal polymer placement inside the mesoporous material. As near-field modes are sensitive to the dielectric properties of their surrounding, the in situ sensing capability is demonstrated using UV–vis spectroscopy. It is demonstrated that the sensing sensitivity only slightly decreases upon functionalization. The presented nanolocal placement of responsive functional polymers into nanopores offers a simultaneous filtering and nanoscopic readout function. Such a nanoscale local control is envisioned to have a strong impact onto the development of new transport and sensor concepts, especially as the system can be developed into higher complexity using different metal nanoparticles and additional design of mesoporous film filtering properties.
机译:在过去二十年中,受生物启发的固态纳米孔和纳米通道吸引了人们的兴趣,因为它们有望推进未来的传感、能量转换和分离概念。尽管在这些材料的功能化方面已经做出了很多努力,但多功能性和精确定位纳米级精度的功能仍然具有挑战性。然而,为了满足生物系统中天然孔隙的输运性能和复杂性,这种精度是必要的,这些孔隙通常基于非平衡状态和分区。在这项工作中,我们展示了一种过滤介孔膜内的纳米局部功能化和同步局部化传感策略,该策略使用精确放置在介孔膜内的等离子体金属纳米颗粒,并具有孔可达性控制。在介孔薄膜中加入一层金纳米颗粒,并沿纳米层厚度进行精确的空间控制。局部表面等离子体激元共振用于诱导光聚合,从而在颗粒周围形成纳米级聚合物外壳,从而在介孔材料内形成纳米局部聚合物。由于近场模式对其周围的介电特性非常敏感,因此利用紫外-可见光谱证明了原位传感能力。结果表明,功能化后,传感灵敏度仅略有降低。所提出的将响应性功能聚合物纳米局部放置到纳米孔中提供了同时过滤和纳米级读出功能。这种纳米级的局部控制预计将对新的传输和传感器概念的发展产生重大影响,尤其是当使用不同的金属纳米颗粒和额外的介孔膜过滤性能设计可以将该系统发展为更高的复杂性时。

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  • 来源
    《Analytical chemistry》 |2021年第13期|共9页
  • 作者单位

    Ernst-Berl Institut für Technische und Makromolekulare Chemie Technische Universit?t Darmstadt Alarich-Weiss-Stra?e;

    Ernst-Berl Institut für Technische und Makromolekulare Chemie Technische Universit?t Darmstadt Alarich-Weiss-Stra?e;

    Institute of Particle Technology Friedrich-Alexander University Erlangen-Nürnberg Cauerstra?e;

    Ernst-Berl Institut für Technische und Makromolekulare Chemie Technische Universit?t Darmstadt Alarich-Weiss-Stra?e;

    Department of Materials and Earth Sciences Physical Metallurgy Group Technische Universit?t Darmstadt Alarich-Weiss-Stra?e;

    Institute of Particle Technology Friedrich-Alexander University Erlangen-Nürnberg Cauerstra?e;

    Ernst-Berl Institut für Technische und Makromolekulare Chemie Technische Universit?t Darmstadt Alarich-Weiss-Stra?e;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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