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液相中多层DNA模板化金-钯-金核壳纳米颗粒生长早期阶段的直接观察

Direct Observation of Early Stages of Growth of Multilayered DNA-Templated Au-Pd-Au Core-Shell Nanoparticles in Liquid Phase.

作者信息

Bhattarai Nabraj, Prozorov Tanya

机构信息

Emergent Atomic and Magnetic Structures, Division of Materials Sciences and Engineering, Ames Laboratory, US Department of Energy, Ames, IA, United States.

出版信息

Front Bioeng Biotechnol. 2019 Feb 26;7:19. doi: 10.3389/fbioe.2019.00019. eCollection 2019.

Abstract

We report here on direct observation of early stages of formation of multilayered bimetallic Au-Pd core-shell nanocubes and Au-Pd-Au core-shell nanostars in liquid phase using low-dose scanning transmission electron microscopy (S/TEM) with the continuous flow fluid cell. The reduction of Pd and formation of Au-Pd core-shell is achieved through the flow of the reducing agent. Initial rapid growth of Pd on Au along <111> direction is followed by a slower rearrangement of Pd shell. We propose the mechanism for the DNA-directed shape transformation of Au-Pd core-shell nanocubes to adopt a nanostar-like morphology in the presence of T30 DNA and discuss the observed nanoparticle motion in the confined volume of the fluid cell. The growth of Au shell over Au-Pd nanocube is initiated at the vertices of the nanocubes, leading to the preferential growth of the {111} facets and resulting in formation of nanostar-like particles. While the core-shell nanostructures formed in a fluid cell under the low-dose imaging conditions closely resemble those obtained in solution syntheses, the reaction kinetics in the fluid cell is affected by the radiolysis of liquid reagents induced by the electron beam, altering the rate-determining reaction steps. We discuss details of the growth processes and propose the reaction mechanism in liquid phase .

摘要

我们在此报告,利用配备连续流动流体池的低剂量扫描透射电子显微镜(S/TEM),在液相中直接观察多层双金属金-钯核壳纳米立方体和金-钯-金核壳纳米星的早期形成阶段。通过还原剂的流动实现钯的还原以及金-钯核壳的形成。钯在金上沿<111>方向的初始快速生长之后是钯壳的较慢重排。我们提出了在T30 DNA存在下金-钯核壳纳米立方体向纳米星状形态进行DNA定向形状转变的机制,并讨论了在流体池有限体积内观察到的纳米颗粒运动。金壳在金-钯纳米立方体上的生长始于纳米立方体的顶点,导致{111}面优先生长,从而形成纳米星状颗粒。虽然在低剂量成像条件下在流体池中形成的核壳纳米结构与溶液合成中获得的结构非常相似,但流体池中的反应动力学受电子束诱导的液体试剂辐射分解的影响,改变了速率决定反应步骤。我们讨论了生长过程的细节并提出了液相中的反应机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7043/6399153/9e574b8c4b10/fbioe-07-00019-g0001.jpg

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