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纳米合金的同时分解与去湿:实验与理论的比较

Simultaneous Decomposition and Dewetting of Nanoscale Alloys: A Comparison of Experiment and Theory.

作者信息

Diez Javier A, González Alejandro G, Garfinkel David A, Rack Philip D, McKeown Joseph T, Kondic Lou

机构信息

CIFICEN-CONICET-CICPBA, Instituto de Física Arroyo Seco, Universidad Nacional del Centro de la Provincia de Buenos Aires, Pinto 399, 7000 Tandil, Argentina.

Department of Materials Science & Engineering, University of Tennessee, Knoxville, Tennessee 37996, United States.

出版信息

Langmuir. 2021 Mar 2;37(8):2575-2585. doi: 10.1021/acs.langmuir.0c02964. Epub 2021 Feb 15.

DOI:10.1021/acs.langmuir.0c02964
PMID:33587633
Abstract

We consider the coupled process of phase separation and dewetting of metal alloys of nanoscale thickness deposited on solid substrates. The experiments involve applying nanosecond laser pulses that melt the AgNi alloy films in two setups: either on thin supporting membranes or on bulk substrates. These two setups allow for extracting both temporal and spatial scales on which the considered processes occur. The theoretical model involves a longwave version of the Cahn-Hilliard formulation used to describe spinodal decomposition, coupled with an asymptotically consistent longwave-based description of dewetting that occurs due to destabilizing interactions between the alloy and the substrate, modeled using the disjoining pressure approach. Careful modeling, combined with linear stability analysis and fully nonlinear simulations, leads to results consistent with the experiments. In particular, we find that the two instability mechanisms occur concurrently, with the phase separation occurring faster and on shorter temporal scales. The modeling results show a strong influence of the temperature dependence of relevant material properties, implying that such a dependence is crucial for the understanding of the experimental findings. The agreement between theory and experiment suggests the utility of the proposed theoretical approach in helping to develop further experiments directed toward formation of metallic alloy nanoparticles of desired properties.

摘要

我们考虑了沉积在固体衬底上的纳米级厚度金属合金的相分离和去湿耦合过程。实验包括在两种设置下施加纳秒激光脉冲来熔化AgNi合金薄膜:一种是在薄支撑膜上,另一种是在块状衬底上。这两种设置能够提取所考虑过程发生的时间和空间尺度。理论模型涉及用于描述旋节线分解的Cahn-Hilliard公式的长波版本,以及基于渐近一致长波的去湿描述,该去湿是由于合金与衬底之间的失稳相互作用而发生的,使用分离压力方法进行建模。仔细的建模,结合线性稳定性分析和完全非线性模拟,得出了与实验一致的结果。特别是,我们发现两种失稳机制同时发生,相分离发生得更快且时间尺度更短。建模结果显示了相关材料特性的温度依赖性的强烈影响,这意味着这种依赖性对于理解实验结果至关重要。理论与实验之间的一致性表明,所提出的理论方法有助于开展进一步的实验,以形成具有所需特性的金属合金纳米颗粒。

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