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双金属纳米粒子核壳结构偏好的一般趋势。

General Trends in Core-Shell Preferences for Bimetallic Nanoparticles.

作者信息

Eom Namsoon, Messing Maria E, Johansson Jonas, Deppert Knut

机构信息

Solid State Physics and NanoLund, Lund University, Box 118, 22100 Lund, Sweden.

出版信息

ACS Nano. 2021 May 25;15(5):8883-8895. doi: 10.1021/acsnano.1c01500. Epub 2021 Apr 23.

Abstract

Surface segregation phenomena dictate core-shell preference of bimetallic nanoparticles and thus play a crucial role in the nanoparticle synthesis and applications. Although it is generally agreed that surface segregation depends on the constituent materials' physical properties, a comprehensive picture of the phenomena on the nanoscale is not yet complete. Here we use a combination of molecular dynamics (MD) and Monte Carlo (MC) simulations on 45 bimetallic combinations to determine the general trend on the core-shell preference and the effects of size and composition. From the extensive studies over sizes and compositions, we find that the surface segregation and degree of the core-shell tendency of the bimetallic combinations depend on the sufficiency or scarcity of the surface-preferring material. Principal component analysis (PCA) and linear discriminant analysis (LDA) on the molecular dynamics simulations results reveal that cohesive energy and Wigner-Seitz radius are the two primary factors that have an "additive" effect on the segregation level and core-shell preference in the bimetallic nanoparticles studied. When the element with the higher cohesive energy also has the larger Wigner-Seitz radius, its core preference decreases, and thus this combination forms less segregated structures than what one would expect from the cohesive energy difference alone. Highly segregated structures (highly segregated core-shell or Janus-like) are expected to form when both the relative cohesive energy difference is greater than ∼20%, and the relative Wigner-Seitz radius difference is greater than ∼4%. Practical guides for predicting core-shell preference and degree of segregation level are presented.

摘要

表面偏析现象决定了双金属纳米粒子的核壳偏好,因此在纳米粒子的合成及应用中发挥着关键作用。尽管人们普遍认为表面偏析取决于组成材料的物理性质,但在纳米尺度上对该现象的全面认识仍不完整。在此,我们对45种双金属组合进行了分子动力学(MD)和蒙特卡洛(MC)模拟,以确定核壳偏好的一般趋势以及尺寸和组成的影响。通过对尺寸和组成的广泛研究,我们发现双金属组合的表面偏析和核壳倾向程度取决于表面偏好材料的充足或稀缺程度。对分子动力学模拟结果进行主成分分析(PCA)和线性判别分析(LDA)表明,结合能和维格纳-赛茨半径是对所研究的双金属纳米粒子的偏析水平和核壳偏好具有“累加”效应的两个主要因素。当结合能较高的元素同时具有较大的维格纳-赛茨半径时,其核偏好降低,因此这种组合形成的偏析结构比仅由结合能差异所预期的要少。当相对结合能差大于约20%且相对维格纳-赛茨半径差大于约4%时,预计会形成高度偏析的结构(高度偏析的核壳结构或类雅努斯结构)。文中给出了预测核壳偏好和偏析水平程度的实用指南。

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