Interlayer interactions and electron transfer effects on sodium adsorption on 2D heterostructures surfaces

IF 8.9 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chinese Chemical Letters Pub Date : 2025-08-01 Epub Date: 2024-07-05 DOI:10.1016/j.cclet.2024.110219
Huifang Ma , Tao Xu , Saifei Yuan , Shujuan Li , Jiayao Wang , Yuping Zhang , Hao Ren , Shulai Lei
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Abstract

Surface adsorption plays a crucial role in various natural and industrial processes, particularly in the field of energy storage. The adsorption of sodium atoms on 2D layered materials can significantly impact their performance as carriers and electrodes in ion batteries. While it is commonly acknowledged that pristine graphene is not favorable for sodium ion adsorption, the suitability of other 2D materials with similar honeycomb symmetry remains unclear. In this study, we employ systematic first-principles calculations to explore interlayer interactions and electron transfer effects on sodium adsorption on 2D van der Waals (vdW) heterostructures (HTSs) surfaces. Our results demonstrate that sodium adsorption is energetically favorable on these substrates. Moreover, we find that the adsorption strength can be effectively tuned by manipulation of the electron accumulation or depletion of the layer directly interacting with the sodium atom. By stacking these layered materials with different electron abundancy to form vdW HTSs, the charge density of the substrate becomes tunable through interlayer charge transfer. In these vdW HTSs, the adsorption behavior of sodium is primarily controlled by the absorption layer and exhibits a linear correlation with its pz-band center. Additionally, we identify linear correlations between the sodium adsorption energies, the electron loss of the sodium atom, the interlayer charge transfer, and the heights of the adsorbed sodium atom. These discoveries underscore the impact of interlayer electron transfer and interactions on sodium ion adsorption on 2D vdW HTSs and providing new insights into material design for alkali atom adsorption.

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二维异质结构表面钠吸附的层间相互作用和电子转移效应
表面吸附在各种自然和工业过程中起着至关重要的作用,特别是在能源储存领域。钠原子在二维层状材料上的吸附对其作为离子电池载体和电极的性能有重要影响。虽然人们普遍认为原始石墨烯不利于钠离子的吸附,但具有类似蜂窝对称性的其他二维材料的适用性尚不清楚。在这项研究中,我们采用系统的第一性原理计算来探索层间相互作用和电子转移对钠在二维范德华(vdW)异质结构(HTSs)表面吸附的影响。我们的结果表明,钠在这些底物上的吸附在能量上是有利的。此外,我们发现可以通过操纵与钠原子直接相互作用的层的电子积累或耗尽来有效地调节吸附强度。将这些具有不同电子丰度的层状材料堆叠形成vdW高温超导,通过层间电荷转移使衬底的电荷密度变得可调。在这些vdW hts中,钠的吸附行为主要由吸收层控制,并与其pz波段中心呈线性相关。此外,我们还确定了钠的吸附能、钠原子的电子损失、层间电荷转移和被吸附钠原子的高度之间的线性关系。这些发现强调了层间电子转移和相互作用对二维vdW HTSs上钠离子吸附的影响,并为碱原子吸附材料的设计提供了新的见解。
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来源期刊
Chinese Chemical Letters
Chinese Chemical Letters 化学-化学综合
CiteScore
14.10
自引率
15.40%
发文量
8969
审稿时长
1.6 months
期刊介绍: Chinese Chemical Letters (CCL) (ISSN 1001-8417) was founded in July 1990. The journal publishes preliminary accounts in the whole field of chemistry, including inorganic chemistry, organic chemistry, analytical chemistry, physical chemistry, polymer chemistry, applied chemistry, etc.Chinese Chemical Letters does not accept articles previously published or scheduled to be published. To verify originality, your article may be checked by the originality detection service CrossCheck.
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