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An Integrated Electrochemistry Approach to the Design and Synthesis of Polyhedral Noble Metal Nanoparticles

机译:多层贵金属纳米粒子设计与合成的集成电化学方法

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摘要

The synthesis of shaped metal nanoparticles to meet the precise needs of emerging applications requires intentional synthetic design directed by fundamental chemical principles. We report an integrated electrochemistry approach to nanoparticle synthetic design that couples current-driven growth of metal nanoparticles on an electrode surface-in close analogy to standard colloidal synthesis-with electrochemical measurements of both electrochemical and colloidal nanoparticle growth. A simple chronopotentiometry method was used to translate an existing colloidal synthesis for corrugated palladium (Pd) nanoparticles to electrochemical growth on a glassy carbon electrode, with minimal modification to the growth solution. The electrochemical synthesis method was then utilized to produce large Pd icosahedra, a shape whose synthesis is challenging in a colloidal growth environment. This electrochemical synthesis for Pd icosahedra was used to develop a corresponding colloidal growth solution by tailoring a weak reducing agent to the measured potential profile of the electrochemical synthesis. Finally, measurements of colloidal syntheses were employed as guides for the directed design of electrochemical syntheses for Pd cubes and octahedra. Together, this work provides a cyclical approach to shaped nanoparticle design that allows for the optimization of nanoparticles grown via a colloidal approach with a chemical reducing agent or synthesized with an applied current on an electrode surface as well as subsequent bidirectional translation between the two methods. The enhanced chemical flexibility and direct tunability of this electrochemical method relative to combinatorial design of colloidal syntheses have the potential to accelerate the synthetic design process for noble metal nanoparticles with targeted morphologies.
机译:成形金属纳米颗粒的合成,以满足新兴应用的精确需求,需要由基本化学原理指导的有意的合成设计。我们向纳米颗粒合成设计报告了一种综合电化学方法,其耦合在电极表面上的金属纳米颗粒上的电流驱动的生长 - 与标准胶体合成 - 具有电化学和胶体纳米颗粒生长的电化学测量。使用简单的计时表方法将瓦楞钯(Pd)纳米颗粒的现有胶体合成转化为玻碳电极上的电化学生长,对生长溶液的改性最小。然后利用电化学合成方法生产大的PD ICOSAHEDRA,其合成在胶体生长环境中具有挑战性的形状。 PD ICOSAHEDRA的这种电化学合成用于通过将弱还原剂定制到电化学合成的测量电位轮廓来发展相应的胶体生长溶液。最后,采用胶体合成的测量作为PD立方体和八面物的电化学合成的指导设计的指导。这项工作一起提供了一种环形方法来形成纳米颗粒设计,其允许通过用胶体方法优化通过具有化学还原剂或用电极表面上的施加电流合成的纳米颗粒的优化,以及两种方法之间的后续双向转换。这种电化学方法相对于胶体合成的组合设计的增强的化学灵活性和直接可调谐性具有加速贵金属纳米粒子的合成设计方法,其具有靶向形态。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第51期|21322-21335|共14页
  • 作者单位

    Department of Chemistry Wesleyan University Middletown Connecticut 06459 United States;

    Department of Chemistry Wesleyan University Middletown Connecticut 06459 United States;

    Department of Chemistry Wesleyan University Middletown Connecticut 06459 United States;

    Department of Chemistry Wesleyan University Middletown Connecticut 06459 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 23:00:59

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