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Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides. / Abbasi, Alireza; Risberg, Emiliana Damian; Eriksson, Lars; Mink, János; Persson, Ingmar; Sandström, Magnus; Sidorov, Yurii V.; Skripkin, Mikhail Yu; Ullström, Ann Sofi.

в: Inorganic Chemistry, Том 46, № 19, 17.09.2007, стр. 7731-7741.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Abbasi, A, Risberg, ED, Eriksson, L, Mink, J, Persson, I, Sandström, M, Sidorov, YV, Skripkin, MY & Ullström, AS 2007, 'Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides', Inorganic Chemistry, Том. 46, № 19, стр. 7731-7741. https://doi.org/10.1021/ic7006588

APA

Abbasi, A., Risberg, E. D., Eriksson, L., Mink, J., Persson, I., Sandström, M., Sidorov, Y. V., Skripkin, M. Y., & Ullström, A. S. (2007). Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides. Inorganic Chemistry, 46(19), 7731-7741. https://doi.org/10.1021/ic7006588

Vancouver

Abbasi A, Risberg ED, Eriksson L, Mink J, Persson I, Sandström M и пр. Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides. Inorganic Chemistry. 2007 Сент. 17;46(19):7731-7741. https://doi.org/10.1021/ic7006588

Author

Abbasi, Alireza ; Risberg, Emiliana Damian ; Eriksson, Lars ; Mink, János ; Persson, Ingmar ; Sandström, Magnus ; Sidorov, Yurii V. ; Skripkin, Mikhail Yu ; Ullström, Ann Sofi. / Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides. в: Inorganic Chemistry. 2007 ; Том 46, № 19. стр. 7731-7741.

BibTeX

@article{b1e3d2bbc4ee4c0e8ef07c5d09ea41b4,
title = "Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides",
abstract = "The octakis(DMSO) (DMSO = dimethylsulfoxide) neodymium(III), samarium(III), gadolinium(III), dysprosium(III), erbium(III), and lutetium(III) iodides crystallize in the monoclinic space group P21/n (No. 14) with Z = 4, while the octakis(DMSO) iodides of the larger lanthanum(III), cerium(III), and praseodymium(III) ions crystallize in the orthorhombic space group Pbca (No. 61), Z = 8. In all [Ln(OS(Me2)8]I3 compounds the lanthanoid(III) ions coordinate eight DMSO oxygen atoms in a distorted square antiprism. Up to three of the DMSO ligands were found to be disordered and were described by two alternative configurations related by a twist around the metal-oxygen (Ln-O) bond. To resolve the atomic positions and achieve reliable Ln-O bond distances, complete semirigid DMSO molecules with restrained geometry and partial occupancy were refined for the alternative sites. This disorder model was also applied on previously collected data for the monoclinic octakis(DMSO)yttrium(III) iodide. At ambient temperature, the eight Ln-O bond distances are distributed over a range of about 0.1 {\AA}. The average value increases from Ln-O 2.30, 2.34, 2.34, 2.36, 2.38, 2.40 to 2.43 {\AA} (Ln = Lu, Er, Y, Dy, Gd, Sm, and Nd) for the monoclinic [Ln(OSMe2) 8]I3 structures, and from 2.44, 2.47 to 2.49 {\AA} (Ln = Pr, Ce, and La) for the orthorhombic structures, respectively. The average of the La-O and Nd-O bond distances remained unchanged at 100 K, 2.49 and 2.43 {\AA}, respectively. Despite longer bond distances and larger Ln-O-S angles, the cell volumes are smaller for the orthorhombic structures (Ln = Pr, Ce, and La) than for the monoclinic structure with Ln = Nd, showing a more efficient packing arrangement. Raman and IR absorption spectra for the [Ln(OS(CH 3)2)8]I3 (Ln = La, Ce, Pr, Nd, Gd, Tb, Dy, Er, Lu, and Y) compounds, also deuterated for La and Y, have been recorded and analyzed by means of normal coordinate methods. The force constants for the Ln-O and S-O stretching modes in the complexes increase with decreasing Ln-O bond distance and show increasing polarization of the bonds for the smaller and heavier lanthanoid(III) ions.",
author = "Alireza Abbasi and Risberg, {Emiliana Damian} and Lars Eriksson and J{\'a}nos Mink and Ingmar Persson and Magnus Sandstr{\"o}m and Sidorov, {Yurii V.} and Skripkin, {Mikhail Yu} and Ullstr{\"o}m, {Ann Sofi}",
year = "2007",
month = sep,
day = "17",
doi = "10.1021/ic7006588",
language = "English",
volume = "46",
pages = "7731--7741",
journal = "Inorganic Chemistry",
issn = "0020-1669",
publisher = "American Chemical Society",
number = "19",

}

RIS

TY - JOUR

T1 - Crystallographic and vibrational spectroscopic studies of octakis(DMSO)lanthanoid(III) iodides

AU - Abbasi, Alireza

AU - Risberg, Emiliana Damian

AU - Eriksson, Lars

AU - Mink, János

AU - Persson, Ingmar

AU - Sandström, Magnus

AU - Sidorov, Yurii V.

AU - Skripkin, Mikhail Yu

AU - Ullström, Ann Sofi

PY - 2007/9/17

Y1 - 2007/9/17

N2 - The octakis(DMSO) (DMSO = dimethylsulfoxide) neodymium(III), samarium(III), gadolinium(III), dysprosium(III), erbium(III), and lutetium(III) iodides crystallize in the monoclinic space group P21/n (No. 14) with Z = 4, while the octakis(DMSO) iodides of the larger lanthanum(III), cerium(III), and praseodymium(III) ions crystallize in the orthorhombic space group Pbca (No. 61), Z = 8. In all [Ln(OS(Me2)8]I3 compounds the lanthanoid(III) ions coordinate eight DMSO oxygen atoms in a distorted square antiprism. Up to three of the DMSO ligands were found to be disordered and were described by two alternative configurations related by a twist around the metal-oxygen (Ln-O) bond. To resolve the atomic positions and achieve reliable Ln-O bond distances, complete semirigid DMSO molecules with restrained geometry and partial occupancy were refined for the alternative sites. This disorder model was also applied on previously collected data for the monoclinic octakis(DMSO)yttrium(III) iodide. At ambient temperature, the eight Ln-O bond distances are distributed over a range of about 0.1 Å. The average value increases from Ln-O 2.30, 2.34, 2.34, 2.36, 2.38, 2.40 to 2.43 Å (Ln = Lu, Er, Y, Dy, Gd, Sm, and Nd) for the monoclinic [Ln(OSMe2) 8]I3 structures, and from 2.44, 2.47 to 2.49 Å (Ln = Pr, Ce, and La) for the orthorhombic structures, respectively. The average of the La-O and Nd-O bond distances remained unchanged at 100 K, 2.49 and 2.43 Å, respectively. Despite longer bond distances and larger Ln-O-S angles, the cell volumes are smaller for the orthorhombic structures (Ln = Pr, Ce, and La) than for the monoclinic structure with Ln = Nd, showing a more efficient packing arrangement. Raman and IR absorption spectra for the [Ln(OS(CH 3)2)8]I3 (Ln = La, Ce, Pr, Nd, Gd, Tb, Dy, Er, Lu, and Y) compounds, also deuterated for La and Y, have been recorded and analyzed by means of normal coordinate methods. The force constants for the Ln-O and S-O stretching modes in the complexes increase with decreasing Ln-O bond distance and show increasing polarization of the bonds for the smaller and heavier lanthanoid(III) ions.

AB - The octakis(DMSO) (DMSO = dimethylsulfoxide) neodymium(III), samarium(III), gadolinium(III), dysprosium(III), erbium(III), and lutetium(III) iodides crystallize in the monoclinic space group P21/n (No. 14) with Z = 4, while the octakis(DMSO) iodides of the larger lanthanum(III), cerium(III), and praseodymium(III) ions crystallize in the orthorhombic space group Pbca (No. 61), Z = 8. In all [Ln(OS(Me2)8]I3 compounds the lanthanoid(III) ions coordinate eight DMSO oxygen atoms in a distorted square antiprism. Up to three of the DMSO ligands were found to be disordered and were described by two alternative configurations related by a twist around the metal-oxygen (Ln-O) bond. To resolve the atomic positions and achieve reliable Ln-O bond distances, complete semirigid DMSO molecules with restrained geometry and partial occupancy were refined for the alternative sites. This disorder model was also applied on previously collected data for the monoclinic octakis(DMSO)yttrium(III) iodide. At ambient temperature, the eight Ln-O bond distances are distributed over a range of about 0.1 Å. The average value increases from Ln-O 2.30, 2.34, 2.34, 2.36, 2.38, 2.40 to 2.43 Å (Ln = Lu, Er, Y, Dy, Gd, Sm, and Nd) for the monoclinic [Ln(OSMe2) 8]I3 structures, and from 2.44, 2.47 to 2.49 Å (Ln = Pr, Ce, and La) for the orthorhombic structures, respectively. The average of the La-O and Nd-O bond distances remained unchanged at 100 K, 2.49 and 2.43 Å, respectively. Despite longer bond distances and larger Ln-O-S angles, the cell volumes are smaller for the orthorhombic structures (Ln = Pr, Ce, and La) than for the monoclinic structure with Ln = Nd, showing a more efficient packing arrangement. Raman and IR absorption spectra for the [Ln(OS(CH 3)2)8]I3 (Ln = La, Ce, Pr, Nd, Gd, Tb, Dy, Er, Lu, and Y) compounds, also deuterated for La and Y, have been recorded and analyzed by means of normal coordinate methods. The force constants for the Ln-O and S-O stretching modes in the complexes increase with decreasing Ln-O bond distance and show increasing polarization of the bonds for the smaller and heavier lanthanoid(III) ions.

UR - http://www.scopus.com/inward/record.url?scp=34948903749&partnerID=8YFLogxK

U2 - 10.1021/ic7006588

DO - 10.1021/ic7006588

M3 - Article

AN - SCOPUS:34948903749

VL - 46

SP - 7731

EP - 7741

JO - Inorganic Chemistry

JF - Inorganic Chemistry

SN - 0020-1669

IS - 19

ER -

ID: 40043861