Structures of stable oxide cluster ions of first-row late transition metals: An ion mobility-mass spectrometric study

F. Misaizu, M. Latif, Jenna W. J. Wu, R. Moriyama, M. Nakano, K. Koyasu, K. Ohshimo
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引用次数: 1

Abstract

Ion mobility mass spectrometry has been applied to unveil stable compositions and geometrical structures of oxide cluster ions of first-row late transition metals such as Fe, Co, Ni, Cu, and Zn. Geometrical structures were assigned by comparison of collision cross sections obtained by this experiment with those calculated for the structures predicted by quantum chemical calculations. Mass spectra of stable compositions of the metal oxide cluster ions resulting from collision-induced-dissociation in the ion drift cell have also been obtained. Oxides of the late transition metals except for Cu were found to have common stable compositions with the same numbers of metal and oxygen atoms, (FeO)n+, (CoO)n+, (NiO)n+, and (ZnO)n+, in addition to oxygen-rich FenOn+1+ ions or oxygen-deficient ConOn−1+, NinOn−1+, and ZnnOn−1+ ions for n up to ≈10. As for the copper oxide clusters, CunOm+ ions with n:m ≈ 2:1 were predominant in the mass spectrum. For the stable ions, structural transitions were commonly observed from two-dimensional (2D) cyclic or sheet structures to three-dimensional (3D) compact structures at around the size n smaller than 8. Both types of isomers coexist at n = 6-8 for (FeO)n+ and (ZnO)n+, and at n = 5 for (NiO)n+, whereas 3D structures were clearly observed from n = 6 for (CoO)n+. These structural transitions were characteristic for the oxide cluster ions of the late transition metals, in marked contrast to those of early transition metals.Ion mobility mass spectrometry has been applied to unveil stable compositions and geometrical structures of oxide cluster ions of first-row late transition metals such as Fe, Co, Ni, Cu, and Zn. Geometrical structures were assigned by comparison of collision cross sections obtained by this experiment with those calculated for the structures predicted by quantum chemical calculations. Mass spectra of stable compositions of the metal oxide cluster ions resulting from collision-induced-dissociation in the ion drift cell have also been obtained. Oxides of the late transition metals except for Cu were found to have common stable compositions with the same numbers of metal and oxygen atoms, (FeO)n+, (CoO)n+, (NiO)n+, and (ZnO)n+, in addition to oxygen-rich FenOn+1+ ions or oxygen-deficient ConOn−1+, NinOn−1+, and ZnnOn−1+ ions for n up to ≈10. As for the copper oxide clusters, CunOm+ ions with n:m ≈ 2:1 were predominant in the mass spectrum. For the stable ions, structural transitions were commonly observed fro...
第一排晚期过渡金属的稳定氧化物簇离子结构:离子迁移率-质谱研究
离子迁移率质谱已被应用于揭示第一排晚期过渡金属如Fe、Co、Ni、Cu和Zn的氧化物簇离子的稳定组成和几何结构。将实验得到的碰撞截面与量子化学计算预测的结构进行比较,确定了几何结构。本文还获得了离子漂移池中碰撞离解产生的金属氧化物簇离子稳定组成的质谱。除Cu外,后期过渡金属的氧化物具有相同数量的金属和氧原子的共同稳定组成,(FeO)n+, (CoO)n+, (NiO)n+和(ZnO)n+,除了富氧的FenOn+1+离子或缺氧的ConOn−1+,NinOn−1+和ZnnOn−1+离子,n高达≈10。对于氧化铜簇,质谱中以n:m≈2:1的CunOm+离子为主。对于稳定离子,通常观察到从二维(2D)环状或片状结构到三维(3D)致密结构的结构转变,其尺寸n小于8。(FeO)n+和(ZnO)n+在n = 6-8处共存,(NiO)n+在n = 5处共存,而(CoO)n+在n = 6处清晰地观察到三维结构。这些结构转变是晚期过渡金属的氧化簇离子的特征,与早期过渡金属形成鲜明对比。离子迁移率质谱已被应用于揭示第一排晚期过渡金属如Fe、Co、Ni、Cu和Zn的氧化物簇离子的稳定组成和几何结构。将实验得到的碰撞截面与量子化学计算预测的结构进行比较,确定了几何结构。本文还获得了离子漂移池中碰撞离解产生的金属氧化物簇离子稳定组成的质谱。除Cu外,后期过渡金属的氧化物具有相同数量的金属和氧原子的共同稳定组成,(FeO)n+, (CoO)n+, (NiO)n+和(ZnO)n+,除了富氧的FenOn+1+离子或缺氧的ConOn−1+,NinOn−1+和ZnnOn−1+离子,n高达≈10。对于氧化铜簇,质谱中以n:m≈2:1的CunOm+离子为主。对于稳定离子,结构转变通常从…
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