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机器学习生成的纯净且具有代表性的无序铂纳米颗粒类型。

The pure and representative types of disordered platinum nanoparticles from machine learning.

作者信息

Parker Amanda J, Motevalli Benyamin, Opletal George, Barnard Amanda S

机构信息

CSIRO Data61, Docklands VIC 3008, Australia.

ANU Research School of Computer Science, Acton ACT 2601, Australia.

出版信息

Nanotechnology. 2021 Feb 26;32(9):095404. doi: 10.1088/1361-6528/abcc23.

Abstract

The development of interpretable structure/property relationships is a cornerstone of nanoscience, but can be challenging when the structural diversity and complexity exceeds our ability to characterise it. This is often the case for imperfect, disordered and amorphous nanoparticles, where even the nomenclature can be unspecific. Disordered platinum nanoparticles have exhibited superior performance for some reactions, which makes a systematic way of describing them highly desirable. In this study we have used a diverse set of disorder platinum nanoparticles and machine learning to identify the pure and representative structures based on their similarity in 121 dimensions. We identify two prototypes that are representative of separable classes, and seven archetypes that are the pure structures on the convex hull with which all other possibilities can be described. Together these nine nanoparticles can explain all of the variance in the set, and can be described as either single crystal, twinned, spherical or branched; with or without roughened surfaces. This forms a robust sub-set of platinum nanoparticle upon which to base further work, and provides a theoretical basis for discussing structure/property relationships of platinum nanoparticles that are not geometrically ideal.

摘要

可解释的结构/性质关系的发展是纳米科学的基石,但当结构的多样性和复杂性超出我们的表征能力时,这可能具有挑战性。对于不完美、无序和无定形的纳米颗粒来说,情况往往如此,在这种情况下,甚至命名法都可能不明确。无序铂纳米颗粒在某些反应中表现出优异的性能,这使得一种系统描述它们的方法非常必要。在这项研究中,我们使用了多种无序铂纳米颗粒,并结合机器学习,基于它们在121维空间中的相似性来识别纯净且具有代表性的结构。我们识别出了代表可分离类别的两个原型,以及七个位于凸包上的纯净结构的原型,所有其他可能性都可以用这些原型来描述。这九个纳米颗粒共同可以解释该集合中的所有变化,并且可以被描述为单晶型、孪晶型、球形或分支型;表面有或没有粗糙化。这形成了一个强大的铂纳米颗粒子集,可作为进一步研究的基础,并为讨论几何形状不理想的铂纳米颗粒的结构/性质关系提供了理论依据。

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