Wang Q, Nassereddine A, Loffreda D, Ricolleau C, Alloyeau D, Louis C, Delannoy L, Nelayah J, Guesmi H
ICGM, Univ. Montpellier, CNRS, ENSCM, Montpellier, France.
Université Paris Cité, CNRS, Laboratoire Matériaux et Phénomènes Quantiques, 75013 Paris, France.
Faraday Discuss. 2023 Jan 31;242(0):375-388. doi: 10.1039/d2fd00130f.
In a recent work [A. Nassereddine 2021, , 2104571] we reported the atomic-scale structure and dynamics of sub-4 nm sized Au nanoparticles (NPs) supported on titania in H at atmospheric pressure obtained by using aberration-corrected environmental transmission electron microscopy (ETEM), density functional theory (DFT) optimizations and molecular dynamic (AIMD) simulations. Our results showed unstable Au NPs losing their face-centred cubic (fcc) symmetry (from fcc to non-fcc symmetries) and revealed the drastic effect of hydrogen adsorption. In this work, we use the same approach to study the dynamics of equiatomic Au-Cu NPs in the same range of size and the results show an enhanced structural stability upon alloying by Cu. In spite of the morphology evolution from facetted to rounded shapes, the observed Au-Cu NPs are found to keep their fcc symmetry under atmospheric hydrogen pressure. AIMD simulation evidences a Cu segregation process from the sub-surface toward the upper surface layer, and a reversed segregation of Au atoms from the surface towards the sub-surface sites. The analysis of the chemical ordering in the core shows a tendency to a local chemical ordering where Au-Cu hetero-atomic bindings are favoured. The segregating Cu seems to play a major role in reducing the fluxionality of Au-Cu NPs in H and thus, maintaining their fcc symmetry.
在最近的一项工作中[A. Nassereddine 2021, , 2104571],我们报道了通过使用像差校正环境透射电子显微镜(ETEM)、密度泛函理论(DFT)优化和分子动力学(AIMD)模拟,在大气压下氢气中负载在二氧化钛上的尺寸小于4纳米的金纳米颗粒(NPs)的原子尺度结构和动力学。我们的结果表明不稳定的金纳米颗粒失去其面心立方(fcc)对称性(从fcc到非fcc对称性),并揭示了氢吸附的显著影响。在这项工作中,我们使用相同的方法研究相同尺寸范围内的等原子金 - 铜纳米颗粒的动力学,结果表明通过铜合金化可提高结构稳定性。尽管形态从多面体形演变为圆形,但观察到的金 - 铜纳米颗粒在大气氢气压力下仍保持其fcc对称性。AIMD模拟证明了一个从次表面向表面上层的铜偏析过程,以及金原子从表面向次表面位点的反向偏析。对核心中化学有序性的分析显示出一种局部化学有序的趋势,其中金 - 铜异原子键合受到青睐。偏析的铜似乎在降低金 - 铜纳米颗粒在氢气中的流动性从而维持其fcc对称性方面起主要作用。