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Real-time atomistic simulation of the Ostwald ripening of TiO(2)supported Au nanoparticles

机译:奥斯特瓦尔德的原子论的实时仿真成熟的TiO(2)支持非盟纳米颗粒

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摘要

Ostwald ripening (OR), one of the major processes of nanoparticle sintering, is critical for the rational design of functional nanomaterials. However, the atomistic mechanism of OR has not been fully understood, because the characterization of interparticle transport of atoms in real-time is challenging by either experiments or theoretical simulations. Thus, current understandings are based onad hocassumptions about the OR mechanism, which have never been confirmed yet at the atomic scale. Herein, we realized all-atom kinetic Monte Carlo simulation of sintering of TiO(2)supported Au nanoparticles (NPs) through the OR mechanism at millisecond timescales. We demonstrated that the "semi-spherical" assumption should be removed. The OR process was a stagewise process determined by different rate-determining steps, which is in contrast to the single-stage presumption. Au dimers, rather than monomers as generally assumed, were exchanged among different NPs. Besides, we proposed a new kinetic model for describing the determining rate of OR without presumptions. This work brings deeper insights into the atomistic OR mechanism and also paves the way for real-time monitoring of catalyst sintering at the atomic scale.
机译:奥斯特瓦尔德成熟(或)的一个主要流程纳米粒子的烧结,是至关重要的设计合理的功能纳米材料。然而,或没有的原子论的机制被完全理解,因为描述颗粒间的运输实时原子是具有挑战性的实验和理论模拟。当前的理解onad为基础hocassumptions或机制,在原子尺度还从未得到证实。在此,我们意识到所有原子动力学蒙特卡洛模拟烧结TiO的(2)支持非盟纳米颗粒(NPs)或机制毫秒时间尺度。“半球形”假设应该被删除。或过程是一个阶梯的过程决定的通过不同的速率决定步骤,与单级推定。二聚体,而不是像一般单体认为,不同NPs之间的交换。此外,我们提出了一种新的动力学模型描述确定的或没有的假设。原子论的或机制铺平道路为实时监控的催化剂烧结在原子尺度。

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