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ACS Macro Lett. 2019 Apr 16;8(4):352-356. doi: 10.1021/acsmacrolett.9b00077. Epub 2019 Mar 14.
2
Dissecting the Role of Substrate on the Morphology and Separation Properties of Thin Film Composite Polyamide Membranes: Seeing Is Believing.剖析基底对薄膜复合聚酰胺膜形态和分离性能的作用:眼见为实。
Environ Sci Technol. 2020 Jun 2;54(11):6978-6986. doi: 10.1021/acs.est.0c01427. Epub 2020 May 20.
3
Intrinsic Nanoscale Structure of Thin Film Composite Polyamide Membranes: Connectivity, Defects, and Structure-Property Correlation.薄膜复合聚酰胺膜的固有纳米结构:连通性、缺陷和结构-性能相关性。
Environ Sci Technol. 2020 Mar 17;54(6):3559-3569. doi: 10.1021/acs.est.9b05892. Epub 2020 Mar 5.
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Molecular Insights into the Composition-Structure-Property Relationships of Polyamide Thin Films for Reverse Osmosis Desalination.对反渗透脱盐用聚酰胺薄膜的组成-结构-性能关系的分子洞察。
Environ Sci Technol. 2019 Jun 4;53(11):6374-6382. doi: 10.1021/acs.est.9b02214. Epub 2019 May 22.
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Aromatic Polyamide Reverse-Osmosis Membrane: An Atomistic Molecular Dynamics Simulation.芳香族聚酰胺反渗透膜:原子尺度分子动力学模拟
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6
Molecular Dynamics Study of Carbon Nanotubes/Polyamide Reverse Osmosis Membranes: Polymerization, Structure, and Hydration.碳纳米管/聚酰胺反渗透膜的分子动力学研究:聚合、结构与水合作用
ACS Appl Mater Interfaces. 2015 Nov 11;7(44):24566-75. doi: 10.1021/acsami.5b06248. Epub 2015 Oct 27.
7
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scikit-image: image processing in Python.scikit-image:在 Python 中进行图像处理。
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评估聚酰胺膜形态、拓扑结构和性能的分子方法

Molecular Methods for Assessing the Morphology, Topology, and Performance of Polyamide Membranes.

作者信息

Vickers Riley, Weigand Timothy M, Miller Cass T, Coronell Orlando

机构信息

Department of Environmental Sciences and Engineering, Gillings School of Global Public Health, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599-7431, USA.

出版信息

J Memb Sci. 2022 Feb 15;644. doi: 10.1016/j.memsci.2021.120110. Epub 2021 Nov 26.

DOI:10.1016/j.memsci.2021.120110
PMID:35082452
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8786217/
Abstract

The molecular-scale morphology and topology of polyamide composite membranes determine the performance characteristics of these materials. However, molecular-scale simulations are computationally expensive and morphological and topological characterization of molecular structures are not well developed. Molecular dynamics simulation and analysis methods for the polymerization, hydration, and quantification of polyamide membrane structures were developed and compared to elucidate efficient approaches for producing and analyzing the polyamide structure. Polymerization simulations that omitted the reaction-phase solvent did not change the observed hydration, pore-size distribution, or water permeability, while improving the simulation efficiency. Pre-insertion of water into the aggregate pores (radius ≈ 4 Å) of dry domains enabled shorter hydration simulations and improved simulation scaling, without altering pore structure, properties, or performance. Medial axis and Minkowski functional methods were implemented to identify permeation pathways and quantify the polyamide morphology and topology, respectively. Better agreement between simulations and experimentally observed systems was accomplished by increasing the domain size rather than increasing the number of ensemble realizations of smaller systems. The largest domain hydrated was an order of magnitude larger by volume than the largest domain previously reported. This work identifies methods that can enable more efficient and meaningful fundamental modeling of membrane materials.

摘要

聚酰胺复合膜的分子尺度形态和拓扑结构决定了这些材料的性能特征。然而,分子尺度模拟计算成本高昂,且分子结构的形态和拓扑表征尚不完善。本文开发并比较了用于聚酰胺膜结构聚合、水合作用和量化的分子动力学模拟与分析方法,以阐明生产和分析聚酰胺结构的有效途径。省略反应相溶剂的聚合模拟不会改变观察到的水合作用、孔径分布或水渗透性,同时提高了模拟效率。在干燥区域的聚集孔(半径约4 Å)中预先注入水,可实现更短的水合模拟并改善模拟尺度,而不会改变孔结构、性质或性能。分别采用中轴线法和闵可夫斯基泛函法来识别渗透途径并量化聚酰胺的形态和拓扑结构。通过增加域大小而非增加较小系统的系综实现次数,模拟与实验观察系统之间取得了更好的一致性。水合的最大域体积比先前报道的最大域大一个数量级。这项工作确定了能够实现更高效、更有意义的膜材料基础建模的方法。