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首页> 外文期刊>Nanoscale >Extraction of interaction parameters from specular neutron reflectivity in thin films of diblock copolymers: an 'inverse problem'
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Extraction of interaction parameters from specular neutron reflectivity in thin films of diblock copolymers: an 'inverse problem'

机译:从二嵌段共聚物薄膜中的镜面中子反射率中提取相互作用参数:“逆问题”

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摘要

Diblock copolymers have been shown to undergo microphase separation due to an interplay of repulsive interactions between dissimilar monomers, which leads to the stretching of chains and entropic loss due to the stretching. In thin films, additional effects due to confinement and monomer-surface interactions make microphase separation much more complicated than in that in bulks (i.e., without substrates). Previously, physics-based models have been used to interpret and extract various interaction parameters from the specular neutron reflectivities of annealed thin films containing diblock copolymers (J. P. Mahalik, J. W. Dugger, S. W. Sides, B. G. Sumpter, V. Lauter and R. Kumar, Interpreting neutron reflectivity profiles of diblock copolymer nanocomposite thin films using hybrid particle-field simulations, Macromolecules, 2018, 51(8), 3116; J. P. Mahalik, W. Li, A. T. Savici, S. Hahn, H. Lauter, H. Ambaye, B. G. Sumpter, V. Lauter and R. Kumar, Dispersity-driven stabilization of coexisting morphologies in asymmetric diblock copolymer thin films, Macromolecules, 2021, 54(1), 450). However, extracting Flory-Huggins χ parameters characterizing monomer-monomer, monomer-substrate, and monomer-air interactions has been labor-intensive and prone to errors, requiring the use of alternative methods for practical purposes. In this work, we have developed such an alternative method by employing a multilayer perceptron, an autoencoder, and a variational autoencoder. These neural networks are used to extract interaction parameters not only from neutron scattering length density profiles constructed using self-consistent field theory-based simulations, but also from a noisy ad hoc model constructed previously. In particular, the variational autoencoder is shown to be the most promising tool when it comes to the reconstruction and extraction of parameters from an ad hoc neutron scattering length density profile of a thin film containing a symmetric di-block copolymer (poly(deuterated styrene-b-n-butyl methacrylate)). This work paves the way for automated analysis of specular neutron reflectivities from thin films of copolymers using machine learning tools.
机译:Diblock共聚物已经接受microphase分离的相互作用造成的排斥之间的相互作用不同单体,从而导致链的延伸和熵的损失由于拉伸。由于监禁和电影,额外的影响使microphase monomer-surface交互分离比这复杂得多散货(也就是说,没有底物)。基于物理模型已经被用来解释并提取各种相互作用参数退火的镜面中子反射率包含diblock共聚物薄膜(j . P。马哈里克,j . w .挖s . w ., b, G。先驱,过滤和r·库马尔解释中子diblock反射率资料使用混合共聚物纳米复合材料薄膜2018年particle-field模拟,大分子,51 (8), 3116;s . Hahn h .清澈的h . Ambaye b . g .先驱,V。过滤和r·库马尔Dispersity-driven稳定共存的形态不对称diblock共聚物薄膜,大分子,2021年,54(1),450)。提取Flory-Hugginsχ参数描述monomer-monomer,monomer-substrate, monomer-air交互劳动密集型和容易出错,要求使用替代方法实用的目的。开发这样一个通过使用替代方法一个多层感知器,autoencoder和变分autoencoder。用于提取交互参数不只从中子散射长度密度配置文件使用自洽场理论基于理论的模拟,但也从一个吵了特别的模型构建。变分autoencoder显示时是最有前途的工具重建和提取的参数从一个特别的中子散射长度密度配置文件包含一个对称的薄膜di-block共聚物(保利(氘styrene-b-n-butyl丙烯酸甲酯))。镜面的自动分析方法中子从薄膜的反射率使用机器学习工具共聚物。

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