WSO和WSeO双面单分子膜形成的原子细节及其在阳离子选择中的作用:寻找环境修复的有效材料

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-09-20 DOI:10.1021/acsomega.5c03270
Jonathan Guerrero-Sanchez*, , , Dalia M. Muñoz-Pizza, , and , Do Minh Hoat, 
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引用次数: 0

摘要

过渡金属二硫族化合物(TMDs),以其二维形式,是一个具有广泛用途和多种应用的半导体家族,涵盖环境,能源,电子,甚至自旋电子学。本文主要研究了WS2和WSe2单层(MLs)及其利用量子力学计算得到WSO和WSeO的氧化过程。氧化发生在有序的热力学可行的对角线模式。从WS2/WSe2到WSO/WSeO,晶格参数也有线性缩减;这一事实与碳元素(Se > S >; O)的电负性直接相关。所有氧化结构均表现出共价键和离子键的混合特征,其中W-O键表现出较强的离子特征。我们测试了未氧化和氧化单层膜作为离子捕获剂的能力。原始WS2和WSe2单层膜对Ca、K、Na和Cl的吸附效果较好,对Mg的吸附效果最差。相比之下,Janus单层对阳离子表现出明显的选择性,并且在气相条件下对Cl阴离子的吸附能最低。在水条件下,Ca、Mg、K和Na也表现出同样的行为,它们与氧化底物形成化学键,同时仍与水合壳配合。相反,Cl与表面的相互作用弱,因为它更倾向于与它的水化壳相互作用。电子定位函数分析证明了阳离子中离子键的形成,非共价相互作用指数等表面澄清了保持cl -表面相互作用的弱范德华(vdW)相互作用,有力地证明了Janus WSO和WSeO单层的氧化部分证明了阳离子的选择,这表明这些二维材料是水处理的潜在阳极。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Atomistic Detail of the Formation of WSO and WSeO Janus Monolayers and Their Role for Cation Selection: Toward Effective Materials for Environmental Remediation

Transition metal dichalcogenides (TMDs), in their 2D form, are a family of semiconductors with great versatility and several applications, spanning from environmental, energy, electronics, and even spintronics. This work focuses on WS2 and WSe2 monolayers (MLs) and their oxidation process to obtain WSO and WSeO using quantum mechanical calculations. The oxidation occurs in well-ordered thermodynamically viable diagonal patterns. There is also a lattice parameter reduction with a linear behavior when going from WS2/WSe2 toward WSO/WSeO; this fact is directly related to the electronegativity of the chalcogen species (Se > S > O). All oxidized structures exhibited bonds with mixed covalent and ionic characteristics, with the W–O bond displaying the stronger ionic character. We tested the capacity of nonoxidized and oxidized monolayers as agents for ion trapping. Pristine WS2 and WSe2 monolayers effectively adsorbed Ca, K, Na, and Cl, with the lowest adsorption observed for Mg. In contrast, the Janus monolayers exhibited apparent selectivity toward cations and showed the lowest adsorption energy for the Cl anion under gas-phase conditions. Under aqueous conditions, the same behavior was observed for Ca, Mg, K, and Na, which form chemical bonds with the oxidized substrate while still coordinating with their hydration shells. In contrast, Cl interacts weakly with the surface, as it prefers to interact with its hydration shell. Electron localization function analysis demonstrated the ionic bond formation in the cations, and the noncovalent interaction index isosurfaces clarified the weak van der Waals (vdW) interactions that hold the Cl-surface interaction, being a strong proof that the oxidized part of the Janus WSO and WSeO monolayers evidence cation selection, which points to these 2D materials as potential anodes for water treatment.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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