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Particle Shape Control via Etching of Core@Shell Nanocrystals

机译:通过蚀刻核心壳纳米晶体蚀刻粒子形状控制

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摘要

The application of nanocrystals as heterogeneous catalysts and plasmonic nanoparticles requires fine control of their shape and chemical composition. A promising idea to achieve synergistic effects is to combine two distinct chemical and/or physical functionalities in bimetallic core@shell nanocrystals. Although techniques for the synthesis of single-component nanocrystals with spherical or anisotropic shape are well-established, new methods are sought to tailor multicomponent nanocrystals. Here, we probe etching in a controlled redox environment as a synthesis technique for multicomponent nanocrystals. Our Monte Carlo computer simulations demonstrate the appearance of characteristic nonequilibrium intermediate microstructures that are further thermodynamically tested and analyzed with molecular dynamics. Convex platelet, concave polyhedron, pod, cage, and strutted-cage shapes are obtained at room temperature with fully coherent structure exposing crystallographic facets and chemical elements along distinct particle crystallographic directions. We observe that structural and dynamic properties are markedly modified compared to the untreated compact nanocrystal.
机译:纳米晶体作为异质催化剂和等离子体纳米颗粒的应用需要对其形状和化学组成的微量控制。实现协同效应的有希望的想法是将两种不同的化学和/或物理功能组合在双金属核心@壳纳米晶体中。尽管为具有球形或各向异性形状的单组分纳米晶体合成的技术是良好的,但是寻求新的方法来定制多组分纳米晶体。这里,我们在受控的氧化还原环境中探测蚀刻作为多组分纳米晶体的合成技术。我们的蒙特卡罗计算机模拟证明了特性非Quiribrium中间微观结构的外观,其具有分子动力学进一步热力学测试和分析。在室温下,在室温下获得凸片,凹面,豆荚,保持架和施力笼形状,具有完全相干的结构,沿着不同的颗粒结晶方向暴露晶体刻面和化学元素。我们观察到与未处理的紧凑型纳米晶体相比,结构和动态性质明显改性。

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