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氢键辅助一氧化氮在各种负载金属的ZSM-5沸石上的吸附

Hydrogen-Bond-Assisted Adsorption of Nitric Oxide on Various Metal-Loaded ZSM-5 Zeolites.

作者信息

Ismail Thufail M, Prasanthkumar Kavanal P, Ebenezer Cheriyan, Anjali Bai Amutha, Solomon Rajadurai Vijay, Sajith Pookkottu K

机构信息

Department of Chemistry, Farook College, Kozhikode 673632, Kerala, India.

Post Graduate and Research Department of Chemistry, Maharaja's College, Ernakulam 682011, Kerala, India.

出版信息

Langmuir. 2022 Aug 30;38(34):10492-10502. doi: 10.1021/acs.langmuir.2c01270. Epub 2022 Aug 15.

Abstract

Understanding the characteristics of nitric oxide (NO) adsorption on metal-loaded zeolites is a prerequisite for developing efficient catalysts for NO abatement reactions. In this study, we probed the effect of the hydrogen bond that exists between adsorbed NO and Brønsted acid sites (BAS) in various metal-loaded ZSM-5 zeolites (M-ZSM-5, wherein M = Fe, Co, Ni, Cu, Zn, Pd, Ag, and Au) by using density functional theory calculations. The presence of a hydrogen bond has altered the NO adsorption energies significantly; appreciable stabilization via hydrogen bonding is noted for NO complexes of Zn, Fe, and Co, and reasonable stabilization is obtained for Ni and Cu complexes, whereas an anomalous effect of a hydrogen bond is identified in Ag, Pd, and Au species. Moderate weakening of the N-O bond in all NO-adsorbed complexes primarily due to a hydrogen bond has been realized in terms of Mayer bond order and quantum theory of atoms in molecules topological analyses; N-O bond activation follows the order Ag < Pd < Au < Ni < Cu < Co < Fe < Zn. We obtained a good correlation between hydrogen bond distance and molecular electrostatic potential at the O atom () of NO adsorbed on BAS-free M-ZSM-5; which suggests that can be considered as a key descriptor to infer the strength of a hydrogen bond between the adsorbed NO and M-ZSM-5 with BAS. Finally, the energy decomposition analysis in combination with natural orbitals for chemical valence has provided the qualitative aspects of electron back-donation from the metal to the antibonding molecular orbital of NO; this back-donation is quite impressive in hydrogen-bond-assisted NO adsorption. We expect that the findings of this study will open up the possibility of the design of BAS-containing metal-loaded zeolites for the catalytic mitigation of NO.

摘要

了解一氧化氮(NO)在负载金属的沸石上的吸附特性是开发用于NO减排反应的高效催化剂的前提条件。在本研究中,我们通过密度泛函理论计算,探究了在各种负载金属的ZSM-5沸石(M-ZSM-5,其中M = Fe、Co、Ni、Cu、Zn、Pd、Ag和Au)中,吸附的NO与布朗斯特酸位点(BAS)之间存在的氢键的影响。氢键的存在显著改变了NO的吸附能;对于Zn、Fe和Co的NO配合物,通过氢键实现了明显的稳定化,对于Ni和Cu配合物获得了合理的稳定化,而在Ag、Pd和Au物种中发现了氢键的反常效应。根据迈耶键级和分子中原子的量子理论拓扑分析,在所有NO吸附配合物中,主要由于氢键导致的N-O键适度减弱已经实现;N-O键活化顺序为Ag < Pd < Au < Ni < Cu < Co < Fe < Zn。我们在无BAS的M-ZSM-5上吸附的NO的O原子()处的氢键距离与分子静电势之间获得了良好的相关性;这表明可以将其视为推断吸附的NO与具有BAS的M-ZSM-5之间氢键强度的关键描述符。最后,结合化学价自然轨道的能量分解分析提供了从金属到NO反键分子轨道的电子回授的定性方面;这种回授在氢键辅助的NO吸附中相当显著。我们期望本研究的结果将为设计用于催化减轻NO的含BAS的负载金属沸石开辟可能性。

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