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首页> 外文期刊>ACS nano >Localized, Stepwise Template Growth of Functional Nanowires from an Amino Acid-Supported Framework in a Microfluidic Chip
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Localized, Stepwise Template Growth of Functional Nanowires from an Amino Acid-Supported Framework in a Microfluidic Chip

机译:在微流控芯片中从氨基酸支持的框架功能纳米线的本地化,逐步模板生长。

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摘要

A spatially controlled synthesis of nanowire bundles of the functional crystalline coordination polymer (CP) Ag(I)TCNQ (tetracyanoquinodimethane) from previously fabricated and trapped monovalent silver CP (Ag(I)Cys (cysteine)) using a room-temperature microfluidic-assisted templated growth method is demonstrated. The incorporation of microengineered pneumatic clamps in a two-layer polydimethylsiloxane-based (PDMS) microfluidic platform was used. Apart from guiding the formation of the Ag(I)Cys coordination polymer, this microfluidic approach enables a local trapping of the in situ synthesized structureswith a simple pneumatic clamp actuation. This method not only enables continuous andmultiple chemical events to be conducted upon the trapped structures, but the excellent fluid handling ensures a precise chemical activation of the amino acid-supported framework in a position controlled by interface and clamp location that leads to a site-specific growth of Ag(I)TCNQ nanowire bundles. The synthesis is conducted stepwise starting with Ag(I)Cys CPs, going through silver metal, and back to a functional CP (Ag(I)TCNQ); that is, a novel microfluidic controlled ligand exchange (CP → NP → CP) is presented. Additionally, the pneumatic clamps can be employed further to integrate the conductive Ag(I)TCNQ nanowire bundles onto electrode arrays located on a surface, hence facilitating the construction of the final functional interfaced systems from solution specifically with no need for postassembly manipulation. This localized self-supported growth of functional matter from an amino acid-based CP shows how sequential localized chemistry in a fluid cell can be used to integrate molecular systems onto device platforms using a chip incorporating microengineered pneumatic tools. The control of clamp pressure and in parallel the variation of relative flow rates of source solutions permit deposition of materials at different locations on a chip that could be useful for device array preparation. The in situ reaction and washing procedures make this approach a powerful one for the fabrication ofmulticomponent complex nanomaterials using a soft bottom-up approach.
机译:使用室温微流体辅助从先前制造和捕获的单价银CP(Ag(I)Cys(半胱氨酸))进行空间控制的功能性晶体配位聚合物(CP)Ag(I)TCNQ(四氰基对二甲烷)纳米线束的合成演示了模板生长方法。使用在两层基于聚二甲基硅氧烷(PDMS)的微流体平台中集成了微工程气动夹具。除了指导Ag(I)Cys配位聚合物的形成外,这种微流体方法还可以通过简单的气动夹具驱动就地捕获原位合成的结构。该方法不仅能够对被困结构进行连续和多次化学反应,而且出色的流体处理能力可确保在界面和夹具位置控制的位置上对氨基酸支撑的框架进行精确的化学活化,从而导致特定位点Ag(I)TCNQ纳米线束的生长。从Ag(I)Cys CP开始逐步进行合成,经过银金属,再回到功能性CP(Ag(I)TCNQ)。即,提出了一种新型的微流控配体交换(CP→NP→CP)。另外,可以进一步使用气动夹具将导电的Ag(I)TCNQ纳米线束集成到位于表面上的电极阵列上,从而特别是无需后组装操作即可从解决方案简化最终功能接口系统的构造。氨基酸基CP的功能性物质的这种局部自支撑生长表明,如何使用结合了微工程气动工具的芯片,将流体细胞中的顺序局部化学作用用于将分子系统整合到设备平台上。夹持压力的控制以及源溶液相对流速的平行变化允许将材料沉积在芯片上的不同位置,这可能对器件阵列的制备有用。原位反应和洗涤程序使该方法成为使用软自下而上方法制造多组分复合纳米材料的有力方法。

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