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用于去除硅氧烷相关污染物的沸石的合理设计,具有高吸附负载和增强的吸附能。

Rational Design of Zeolites to Remove Siloxane-Related Pollutants with High Adsorption Loading and Enhanced Adsorption Energy.

作者信息

Lin Shiru, Liu Biao, Wang Yekun, Zhao Yinghe, Hernández-Maldonado Arturo J, Chen Zhongfang

机构信息

Department of Chemistry, University of Puerto Rico, Río Piedras, San Juan, Puerto Rico 00931, United States.

Division of Chemistry and Biochemistry, Texas Woman's University, Denton, Texas 76204, United States.

出版信息

ACS Omega. 2025 Jun 6;10(23):24160-24168. doi: 10.1021/acsomega.4c10886. eCollection 2025 Jun 17.

Abstract

Though siloxanes and their derivatives have been widely used, they are emerging and persistent pollutants in water systems. Developing high-performance and low-cost adsorbents to remove siloxane-related pollutants is an essential strategy for removing these contaminants. Through Grand Canonical Monte Carlo (GCMC) simulations, we computed and evaluated the adsorption performances of 246 experimentally available zeolite frameworks toward three silanols, namely, trimethylsilanol (TMS), dimethylsilanediol (DMSD), monomethylsilanetriol (MMST), and the coexisting contaminant in siloxane-impacted environments, dimethylsulfone (DMSO), and obtained the best sorbents for each pollutant. To seek multifunctional zeolites, we first screened out the top 10 zeolite frameworks based on the loading values, among which the framework RWY showed the best performance. We further demonstrated that introducing dopants can enhance adsorption performance by taking RWY as an example. This work not only identified the most promising zeolite frameworks for removing linear siloxanes and derivatives, but also provided a relatively efficient and practical computational approach for screening sorbent materials for other emerging pollutants, balancing accuracy with tractable computational cost.

摘要

尽管硅氧烷及其衍生物已被广泛使用,但它们却是水系统中新兴的持久性污染物。开发高性能、低成本的吸附剂来去除与硅氧烷相关的污染物是去除这些污染物的一项重要策略。通过巨正则蒙特卡罗(GCMC)模拟,我们计算并评估了246种实验可得的沸石骨架对三种硅醇(即三甲基硅醇(TMS)、二甲基硅二醇(DMSD)、单甲基硅三醇(MMST))以及硅氧烷污染环境中共存污染物二甲基砜(DMSO)的吸附性能,并获得了针对每种污染物的最佳吸附剂。为了寻找多功能沸石,我们首先根据负载值筛选出排名前十的沸石骨架,其中RWY骨架表现出最佳性能。我们进一步以RWY为例证明了引入掺杂剂可以提高吸附性能。这项工作不仅确定了去除线性硅氧烷及其衍生物最有前景的沸石骨架,还为筛选其他新兴污染物的吸附剂材料提供了一种相对高效且实用的计算方法,在准确性与可处理的计算成本之间取得了平衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f592/12177750/090161ed4176/ao4c10886_0001.jpg

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