Li-decorated black phosphorene: A promising platform for gas molecule adsorption

IF 2.3 3区 化学 Q3 CHEMISTRY, PHYSICAL International Journal of Quantum Chemistry Pub Date : 2024-06-23 DOI:10.1002/qua.27427
Atefe Ebrahimi, Mohammad Izadyar
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Abstract

Using density functional theory, we investigated the adsorption of different gases, including CO, CO2, H2S, NO2, and SO2, on decorated phosphorene with various alkali metals such as Li, Na, K, Rb, and Cs. Gas molecules are physisorbed on phosphorene and, according to calculations, alkali metal decoration significantly improves the adsorption of gas molecules by phosphorene due to the reinforcement of interface interactions. Based on the stability criterion (ΔEads), the preference for choosing the best decorated phosphorene system for adsorbing different gases can be arranged as follows: Li > Na > K > Rb > Cs. Li-phosphorene is the most stable decorated system, and due to its higher binding energy in complexation with CO, CO2, H2S, NO2, and SO2, Li-decorated phosphorene shows greater potential in absorbing these gases. Donor-acceptor interactions analysis has confirmed that the origin of stability can be attributed to molecular orbital interactions between these metals and the phosphorene surface (201.69 kcal mol-1). Based on the calculated adsorption energies, Li-decoration on black phosphorene has the most significant adsorption value for CO (−2.48 eV). Finally, Li has been suggested as the most suitable phosphorene decorator for enhanced gas molecule adsorption or detection.

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锂装饰黑色磷烯:前景广阔的气体分子吸附平台
利用密度泛函理论,我们研究了不同气体(包括 CO、CO2、H2S、NO2 和 SO2)在带有 Li、Na、K、Rb 和 Cs 等各种碱金属装饰的磷烯上的吸附情况。气体分子在磷烯上是物理吸附的,根据计算,由于界面相互作用的加强,碱金属装饰显著改善了磷烯对气体分子的吸附。根据稳定性标准(ΔEads),选择吸附不同气体的最佳装饰磷烯体系的优先顺序如下:Li > Na > K > Rb > Cs。锂膦是最稳定的装饰体系,由于其与 CO、CO2、H2S、NO2 和 SO2 的络合结合能较高,锂装饰膦在吸收这些气体方面表现出更大的潜力。供体-受体相互作用分析证实,其稳定性可归因于这些金属与磷烯表面之间的分子轨道相互作用(201.69 kcal mol-1)。根据计算得出的吸附能,黑色磷烯上的锂装饰对 CO 的吸附值最大(-2.48 eV)。最后,锂被认为是最适合用于增强气体分子吸附或检测的磷烯装饰剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Quantum Chemistry
International Journal of Quantum Chemistry 化学-数学跨学科应用
CiteScore
4.70
自引率
4.50%
发文量
185
审稿时长
2 months
期刊介绍: Since its first formulation quantum chemistry has provided the conceptual and terminological framework necessary to understand atoms, molecules and the condensed matter. Over the past decades synergistic advances in the methodological developments, software and hardware have transformed quantum chemistry in a truly interdisciplinary science that has expanded beyond its traditional core of molecular sciences to fields as diverse as chemistry and catalysis, biophysics, nanotechnology and material science.
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