Structural variability of rare-earth bromide complexes with acetylurea
- Авторлар: Akulinin P.V.1, Savinkina Е.V.1, Grigoriev М.S.2, Belousov Y.А.3,4
-
Мекемелер:
- MIREA — Russian Technological University
- Frumkin Institute of Physical Chemistry and Electrochemistry RAS
- Lomonosov Moscow State University
- Lebedev Physical Institute RAS
- Шығарылым: Том 69, № 5 (2024)
- Беттер: 727-735
- Бөлім: КООРДИНАЦИОННЫЕ СОЕДИНЕНИЯ
- URL: https://ter-arkhiv.ru/0044-457X/article/view/666539
- DOI: https://doi.org/10.31857/S0044457X24050102
- EDN: https://elibrary.ru/YEXFTM
- ID: 666539
Дәйексөз келтіру
Аннотация
New coordination compounds of light rare-earth (RE) bromides with acetylurea (AsUr) were synthesized, [Y(AcUr)2(H2O)4]1.39[Y(AcUr)2(H2O)5]0.61Br6·2H2O (I), [La(AcUr)2(H2O)5]Br3 (II), [Ce(AcUr)2(H2O)5]Br3 (III), [Nd(AcUr)2(H2O)5]Br3 (IV), [Sm(AcUr)2(H2O)5]Br3 (V); elemental analysis, IR spectroscopy and X-ray diffraction were used to determine their compositions and structural features. Compound I is built of the [Y(AcUr)2(H2O)4]3+ and [Y(AcUr)2(H2O)5]3+ cations in the 2.28 : 1; they differ by the number of the inner-sphere water molecules (4 and 5 for coordination numbers 8 and 9, respectively), non-coordinated Br— ions and H2O molecules. Compounds II and III are built of the [Ln(AcUr)2(H2O)5]3+ (Ln = La, Ce) cations and outer-sphere Br— ions. The structures changes on cooling from 296 K to 100 K being isostructural at both temperatures. Compounds IV and V have the same composition, but different structures. They also have different polymorphous modifications at 100 and 296 K. Samarium, terbium and dysprosium bromide complexes of acetyl urea show photoluminescence.
Негізгі сөздер
Авторлар туралы
P. Akulinin
MIREA — Russian Technological University
Email: savinkina@mirea.ru
Lomonosov Institute of Fine Chemical Technologies
Ресей, MoscowЕ. Savinkina
MIREA — Russian Technological University
Хат алмасуға жауапты Автор.
Email: savinkina@mirea.ru
Lomonosov Institute of Fine Chemical Technologies
Ресей, MoscowМ. Grigoriev
Frumkin Institute of Physical Chemistry and Electrochemistry RAS
Email: savinkina@mirea.ru
Ресей, Moscow
Yu. Belousov
Lomonosov Moscow State University; Lebedev Physical Institute RAS
Email: savinkina@mirea.ru
Faculty of Chemistry
Ресей, Moscow; MoscowӘдебиет тізімі
- Shibasaki M., Yoshikawa N. // Chem. Rev. 2002. V. 102. № 6. P. 2187. https://doi.org/10.1021/cr010297z
- Binnemans K. // Chem. Rev. 2009. V. 109. № 9. P. 4283. https://doi.org/10.1021/cr8003983
- Woodruff D.N., Winpenny R.E.P., Layfield R.A. // Chem. Rev. 2013. V. 113. № 7. P. 5110. https://doi.org/10.1021/cr400018q
- Lanthanides, tantalum, and niobium: mineralogy, geochemistry, characteristics of primary ore deposits, prospecting, processing and applications. Proceedings of a workshop in Berlin, November 1986 / Eds. Möller P., Černý P., Saupé F. Berlin, Heidelberg: Springer-Verlag, 1989. 380 p.
- Seitz M., Oliver A.G., Raymond K.N. // J. Amer. Chem. Soc. 2007. V. 129. № 36. P. 11153. https://doi.org/10.1021/ja072750f
- Cotton S.A., Raithby P.R. // Coord. Chem. Rev. 2017. V. 340. P. 220. https://doi.org/10.1016/j.ccr.2017.01.011
- Cotton S. Lanthanide and actinide chemistry. John Wiley & Sons, 2013. 288 p.
- Cotton S.A. // Chimie. 2005. V. 8. № 2. P. 129. https://doi.org/10.1016/j.crci.2004.07.002
- Kim P., Anderko A., Navrotsky A., Riman R.E. // Minerals. 2018. V. 8. № 3. P. 106. https://doi.org/10.3390/min8030106
- Gumin´ski C., Voigt H., Zeng D. // Monatsh. Chem. 2011. V. 142. P. 211. https://doi.org/10.1007/s00706-011-0457-y
- Yin X., Wang Y., Bai X., et al. // Nat. Commun. 2017. V. 8. P. 14438. https://doi.org/10.1038/ncomms14438
- Savinkina E.V., Golubev D.V., Podgornov K.V., et al. // Z. Anorg. Allgem. Chem. 2013. V. 639. № 1. P. 53. https://doi.org/10.1002/zaac.201200267
- Аликберова Л.Ю., Альбов Д.В., Бушмелева А.С. и др. // Коорд. химия. 2014. Т. 40. № 12. С. 748.
- Isbjakowa A.S., Grigoriev M.S., Golubev D.V., Savinkina E.V. // J. Mol. Struct. 2020. V. 1201. №. 127141. https://doi.org/10.1016/j.molstruc.2019.127141
- Bushmeleva A.S., Alikberova L.Y., Albov D.V. // Advancing Coordination, Bioinorganic and Applied Inorganic Chemistry. The 50th Anniversary of ICCBIC / Eds. Melník M., Segľa P., Tatarko M. Bratislava: Slovak Chemical Society, 2015. P. 27–40.
- Savinkina E.V., Akulinin P.V., Golubev D.V., Grigoriev M.S. // Polyhedron. 2021. V. 204. P. 115258. https://doi.org/10.1016/j.poly.2021.115258
- Sheldrick G.M. SADABS. Madison, Wisconsin (USA): Bruker AXS, 2008.
- Sheldrick G.M. // Acta Crystallogr. Sect. A. 2008. V. 64. № 1. P. 112. https://doi.org/10.1107/S0108767307043930
- Sheldrick G.M. // Acta Crystallogr. Sect. C. 2015. V. 714. № 1. P. 3. https://doi.org/10.1107/S2053229614024218
- Bünzli J.-C.G., Eliseeva S.V. // Lanthanide Luminescence: Photophysical, Analytical and Biological Aspects / Eds. Hänninen P., Härmä H. Berlin, Heidelberg: Springer-Verlag, 2011. P. 1.
- Kimura T., Kato Y. // J. Alloys Compd. 1998. V. 275. P. 806. https://doi.org/10.1016/S0925-8388(98)00446-0
- Kiskin M.A., Taydakov I.V., Metlin M.T. et al. // Dye. Pigment. 2022. V. 199. № 110078. https://doi.org/10.1016/j.dyepig.2021.110078
- Feng X., Li S.-H., Wang L-Y. et al. // CrystEngComm. 2012. V. 14. № 10. P. 3684. https://doi.org/10.1039/C2CE06151A
- Savinkina E.V., Golubev D.V., Grigoriev M.S., Kornilov A. // J. Mol. Struct. 2021. V. 1227. №. 5. P. 129526. https://doi.org/10.1016/j.molstruc.2020.129526
- Аликберова Л.Ю., Антоненко Т.А., Альбов Д.В. // Тонкие химические технологии. 2015. Т. 10. № 1. С. 66.
- Haddad S.F. // Acta Crystallogr. Sect. C. 1988. V. 44. № 5. P. 815. https://doi.org/10.1107/S010827018800054X
- Haddad S.F. // Acta Crystallogr. Sect. C. 1987. V. 43. № 10. P. 1882. https://doi.org/10.1107/S0108270187089753
- Корнилов А.Д., Григорьев М.С., Савинкина Е.В. // Тонкие химические технологии. 2022. Т. 17. № 2. С. 172.
- Заполоцкий Е.Н., Бабаилов С.П. // Известия АН. Сер. Химическая. 2022. Т. 71. № 10. С. 2165.
- Заполоцкий Е. Н., Бабайлов С. П. Журн. неорган. химии. 2022. T. 67. № 11. С. 1646.
Қосымша файлдар
