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Shape-directional growth of Pt and Pd nanoparticles

机译:Shape-directional Pt和Pd的增长纳米粒子

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摘要

The design and synthesis of shape-directed nanoscale noble metal particles have attracted much attention due to their enhanced catalytic properties and the opportunities to study fundamental aspects of nanoscale systems. As such, numerous methods have been developed to synthesize crystals with tunable shapes, sizes, and facets by adding foreign species that promote or restrict growth on specific sites. Many hypotheses regarding how and why certain species direct growth have been put forward, however there has been no consensus on a unifying mechanism of nanocrystal growth. Herein, we develop and demonstrate the capabilities of a mathematical growth model for predicting metal nanoparticle shapes by studying a well known procedure that employs AgNO3 to produce {111} faceted Pt nanocrystals. The insight gained about the role of auxiliary species is then utilized to predict the shape of Pd nanocrystals and to corroborate other shape-directing syntheses reported in literature. The fundamental understanding obtained herein by combining modeling with experimentation is a step toward computationally guided syntheses and, in principle, applicable to predictive design of the growth of crystalline solids at all length scales (nano to bulk).
机译:shape-directed的设计和合成纳米贵金属粒子吸引了关注由于其增强的催化属性和学习的机会纳米系统的基本方面。这样,许多方法已经开发出来与可调合成晶体形状、大小,通过添加促进外国物种和方面对特定网站或限制增长。假设关于如何和为什么某些物种然而,直接增长提出了没有一个统一的共识的纳米晶体生长机制。开发和演示的能力数学增长模型预测金属纳米颗粒的形状通过研究一个众所周知的生产过程采用硝酸银{111}在上雕琢平面的Pt纳米晶体。然后利用辅助物种的角色预测Pd纳米晶体的形状和证实了其他shape-directing合成报告文学。获得的理解相结合建模与实验是一个一步计算指导合成,在原则,适用于预测的设计增长的水晶固体长度尺度散装(纳米)。

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