首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >EPR Spectroscopy of Cu(I)-NO adsorption complexes formed over Cu-ZSM-5 and Cu-MCM-22 zeolites
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EPR Spectroscopy of Cu(I)-NO adsorption complexes formed over Cu-ZSM-5 and Cu-MCM-22 zeolites

机译:EPR光谱在Cu-ZSM-5和Cu-MCM-22分子筛上形成的Cu(I)-NO吸附配合物

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摘要

The Cu(I)-NO adsorption complexes were formed over copper exchanged and autoreduced high siliceous Cu-ZSM-5 and Cu-MCM-22 zeolites and studied by EPR spectroscopy at X-, Q-, and W-band frequencies. The spin Hamiltonian parameters of the Cu(I)-NO species are indicative of a nitrogen-centered radical complex with a bent geometry and a significant contribution of the Cu(I) 4s atomic orbital to the wave function of the unpaired electron. Two different Cu(I)-NO species were found in both zeolites. It has been confirmed by comparing the experimental data with the results of previous theoretical studies that the presence of two different species is due to the formation of Cu(I)-NO adsorption complexes from two different Cu(I) sites in the zeolite matrix with different numbers of oxygen coligands. The structure of the two sites in the Cu-ZSM-5 and Cu-MCM-22 zeolites must be similar as the spin Hamiltonian parameters are found to be almost independent of the zeolite matrix, where the Cu(I)-NO complex is formed. The EPR signal intensity of the Cu(I)-NO species was studied as a function of the NO loading, and the formation of diamagnetic Cu(I)(NO)2 species with rising NO pressure at the expense of paramagnetic Cu(I)-NO monomers could be demonstrated for both systems at low temperatures.
机译:Cu(I)-NO吸附配合物形成在交换的铜和自动还原的高硅质Cu-ZSM-5和Cu-MCM-22沸石上,并通过EPR光谱研究了X,Q和W波段的频率。 Cu(I)-NO物种的自旋哈密顿量参数指示具有弯曲几何形状的氮中心自由基配合物,以及Cu(I)4s原子轨道对未成对电子的波动函数的重要贡献。在两种沸石中均发现了两种不同的Cu(I)-NO。通过将实验数据与以前的理论研究结果进行比较,可以证实存在两种不同的物质是由于沸石基体中两个不同的Cu(I)部位形成了Cu(I)-NO吸附络合物,不同数量的氧大肠菌。 Cu-ZSM-5和Cu-MCM-22沸石中两个位点的结构必须相似,因为发现自旋哈密顿量参数几乎独立于形成Cu(I)-NO络合物的沸石基质。研究了Cu(I)-NO物种的EPR信号强度与NO负载的关系,并随着NO压力的升高而形成了反磁性Cu(I)(NO)2物种,但以顺磁性Cu(I)为代价-在低温下两种体系都不能证明有单体。

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