电化学溶解:高熵合金成分空间中的路径。

High entropy alloys & materials Pub Date : 2025-01-01 Epub Date: 2025-04-29 DOI:10.1007/s44210-025-00057-3
Mads K Plenge, Jack K Pedersen, Luis A Cipriano, Jan Rossmeisl
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引用次数: 0

摘要

纳米催化剂在电化学反应中的稳定性对其应用至关重要。尽管人们对多金属合金纳米颗粒(如高熵合金(HEAs))的电催化研究越来越感兴趣,而且它们的催化活性也出现了新的模型,但能够预测这些合金在反应条件下亚稳性(包括抗电化学表面溶解的稳定性)的框架研究仍然有限。将电化学稳定性纳入多目标优化,将推动HEAs作为催化剂发现平台。为了解决电化学稳定性方面的知识差距,我们提出了一种模拟n元素合金纳米颗粒溶解的方法,该方法由密度泛函理论和机器学习回归组成,以计算表面原子的溶解电位。我们演示了在氧还原反应条件下的Ag-Au-Cu-Ir-Pd-Pt-Rh-Ru HEA体系的方法。通过对八金属组成空间的成分网格搜索,我们研究了抗溶解稳定性的趋势,发现了两种提高抗电化学表面溶解稳定性的合金化策略:用贵金属或具有高相对表面能的金属合金化。在模拟中,稳定源于形成保护表面层,因此,持久性合金纳米颗粒的溶解导致核壳结构。该模型可以跟踪电化学溶解过程中表面和溶解成分的演变,形成溶解路径,揭示不可保留的表面成分。图片摘要:补充资料:在线版本包含补充资料,下载地址:10.1007/s44210-025-00057-3。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrochemical Dissolution: Paths in High-Entropy Alloy Composition Space.

The stability of a nanoparticle catalyst during electrochemical reaction is crucial for its application. Despite increasing interest in multi-metallic alloy nanoparticles, such as high-entropy alloys (HEAs), for electrocatalysis and emerging models for their catalytic activity, there is limited work on frameworks that can predict the metastability of these alloys under reaction conditions, including stability against electrochemical surface dissolution. Incorporating electrochemical stability in multi-objective optimization would advance HEAs as a catalyst discovery platform. To address the knowledge gap on electrochemical stability, we propose a methodology for simulating the dissolution of n-element alloy nanoparticles comprised of density functional theory and machine-learning regression to calculate the dissolution potentials of the surface atoms. We demonstrate the methodology for the Ag-Au-Cu-Ir-Pd-Pt-Rh-Ru HEA system with the conditions of the oxygen reduction reaction. We investigated trends in stability against dissolution through a compositional grid search for the octo-metallic composition space, uncovering two alloying strategies to increase stability against electrochemical surface dissolution: Alloying with a noble metal or a metal with high relative surface energy. In the simulations, stabilization ensues from forming a protective surface layer, and consequently, the dissolution of persistent alloyed nanoparticles results in core-shell structures. The model enables tracing the evolution of the surface and dissolved composition during electrochemical dissolution, forming paths of dissolution and revealing unretainable surface compositions.

Graphical abstract:

Supplementary information: The online version contains supplementary material available at 10.1007/s44210-025-00057-3.

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