Influence of substitute in the ligand and counterion on the properties of heptanuclear iron complex

Мұқаба

Дәйексөз келтіру

Толық мәтін

Ашық рұқсат Ашық рұқсат
Рұқсат жабық Рұқсат берілді
Рұқсат жабық Тек жазылушылар үшін

Аннотация

New heptanuclear mixed-valence iron complexes with pentadentate ligands have been synthesized, and their magnetic properties have been studied. It has been found that the presence of thiocyanate anions leads to the emergence of spin-crossover properties by magnetometry and EPR methods. The insertion of long alkoxy chains into the molecule leads to thermotropic liquid crystalline properties and enhanced cooperative magnetic properties.

Толық мәтін

Рұқсат жабық

Авторлар туралы

Е. Batueva

Kazan Federal University

Email: sasha_turanov@rambler.ru
Ресей, Kazan

A. Sharipova

Federal Research Center Kazan Scientific Center of Russian Academy of Sciences

Email: sasha_turanov@rambler.ru

Zavoisky Physical-Technical Institute

Ресей, Kazan

Е. Frolova

Federal Research Center Kazan Scientific Center of Russian Academy of Sciences

Email: sasha_turanov@rambler.ru

Zavoisky Physical-Technical Institute

Ресей, Kazan

L. Savostina

Kazan Federal University; Federal Research Center Kazan Scientific Center of Russian Academy of Sciences

Email: sasha_turanov@rambler.ru

Zavoisky Physical-Technical Institute

Ресей, Kazan; Kazan

L. Bazan

Federal Research Center Kazan Scientific Center of Russian Academy of Sciences

Email: sasha_turanov@rambler.ru

Zavoisky Physical-Technical Institute

Ресей, Kazan

M. Cherosov

Kazan Federal University

Email: sasha_turanov@rambler.ru
Ресей, Kazan

R. Batulin

Kazan Federal University

Email: sasha_turanov@rambler.ru
Ресей, Kazan

O. Turanova

Federal Research Center Kazan Scientific Center of Russian Academy of Sciences

Email: sasha_turanov@rambler.ru

Zavoisky Physical-Technical Institute

Ресей, Kazan

A. Turanov

Federal Research Center Kazan Scientific Center of Russian Academy of Sciences

Хат алмасуға жауапты Автор.
Email: sasha_turanov@rambler.ru

Zavoisky Physical-Technical Institute

Ресей, Kazan

Әдебиет тізімі

  1. Магомедов К.Э., Омельянчик А.С., Воронцов С.А. и др. // Изв. РАН. Сер. физ. 2023. Т. 87. № 6. С. 819; Magomedov K.E., Omelyanchik A.S., Vorontsov S.A. et al. // Bull. Russ. Acad. Sci. Phys. 2023. V. 87. No. 6. P. 720.
  2. Хлюстова А.В., Шипко М.Н., Степович М.А. и др. // Изв. РАН. Сер. физ. 2023. Т. 87. № 10. С. 1517; Khlyustova A.V., Shipko M.N., Stepovich M.A. et al. // Bull. Russ. Acad. Sci. Phys. 2023. V. 87. No. 10. P. 1549.
  3. Кафеева Д.А., Куршанов Д.А., Дубовик А.Ю. // Изв. РАН. Сер. физ. 2023. Т. 87. № 6. С. 801; Kafeeva D.A., Kurshanov D.A., Dubavik, A.Y. // Bull. Russ. Acad. Sci. Phys. 2023. 87. No. 6. P. 705.
  4. Макеев М.Ю., Мамонова М.В. // Изв. РАН. Сер. физ. 2023. Т. 87. № 4. С. 493; Makeev M.Y., Mamonova M.V. // Bull. Russ. Acad. Sci. Phys. 2023. V. 87. No. 4. P. 427.
  5. Salitros I., Madhu N.T., Boca R. et al. // Monatsh fur Chemie. 2009. V. 140. P. 695.
  6. Овчинников И.В., Иванова Т.А., Туранова О.А. и др. // Коорд. химия. 2013. Т. 39. № 8. С. 502; Ovchinnikov I.V., Ivanova T.A., Turanova O.A. et al. // Rus. J. Coord. Chem. 2013. V. 39. No. 8. P. 598.
  7. Boca R., Nemec I., Salitros I. et al. // Pure Appl. Chem. 2009. V. 81. No. 8. P. 1357.
  8. Boca R., Salitros I., Kozisek J. et al. // Dalton Trans. 2010. V. 39. No 9. P. 2198.
  9. Salitros I., Boca R., Herchel R. et al. // Inorg. Chem. 2012. V. 51. No 23. P. 12755.
  10. Liu J.L., Ji X.Y., Xue J.P. et al. // Crys. Growth Des. 2022. V. 22. No. 8. P. 5092.
  11. Bleuzen A., Marvaud V., Mathoniere C. et al. // Inorg. Chem. 2009. V. 48. No. 8. P. 3453.
  12. Shan Y., Zhang G., Yin W. et al. // Bull. Chem. Soc. Japan. 2022. V. 95. No 2. P. 230.
  13. Фролова Е.Н., Иванова Т.А., Туранова О.А. и др. // Журн. неорг. химии. 2018. Т. 63. № 8. С. 974.; Frolova E.N., Ivanova T.A., Turanova O.A. et al. // Russ. J. Inorg. Chem. 2018. V. 63. No. 8. P. 1012.
  14. Туранова О.А., Иванова Г.И., Гафиятуллин Л.Г. и др. // Журн. общ. химии. 2014. Т. 84. № 11. С. 1878; Turanova O.A., Ivanova G.I., Gafiyatullin L.G. et al. // Russ. J. Gen. Chem. 2014. V. 84. No. 11. P. 2174.
  15. Matsumoto N., Ohta S., Yoshimura C. et al. // J. Chem. Soc. Dalton Trans. 1985. V. 12. P. 2575.
  16. Gembicky M., Boca R., Renz F. // Inorg. Chem. Commun. 2000. V. 3. No. 11. P. 662.
  17. Dierking I. Textures of liquid crystals. Hoboken: John Wiley & Sons, 2006. 230 p.
  18. Neese F. // WIREs Comput. Mol. Sci. 2012. V. 2. No. 1. P. 73.
  19. Neese F. // WIREs Comput. Mol. Sci. 2022. V. 12. No. 5. Art. No. e1606.
  20. Stoll S., Schweiger A. // J. Magn. Reson. 2006. V. 178. No. 1. P. 42.
  21. Вульфсон С.Г. Молекулярная магнетохимия. М.: Наука, 1991. 260 с.
  22. Boca R., Salitros I. // Chem. Papers. 2008. V. 62. No. 6. P. 575.
  23. Иванова Т.А., Мингалиева Л.В., Овчинников И.В. и др. // Журн. общ. химии. 2016. Т. 86. № 7. С. 1170; Ivanova T.A., Mingalieva L.V., Ovchinnikov I.V. et al. // Russ. J. Gen. Chem. 2016. V. 86. No. 7. P. 1647.
  24. Иванова Т.А., Овчинников И.В., Гильмутдинов И.Ф. и др. // ФТТ. 2016. Т. 58. № 2. С. 273.; Ivanova T.A., Ovchinnikov I.V., Gil’mutdinov I.F. et al. // Phys. Solid State. 2016. V. 58. No. 2. P. 280.

Қосымша файлдар

Қосымша файлдар
Әрекет
1. JATS XML
2. Fig. 1. Synthesis of precursors and heptnuclear complexes: 1 — R = H, X = Cl, 2 — R = H, X = SCN, 3 — R = C18H37O, X = Cl

Жүктеу (403KB)
3. Fig. 2. Liquid crystal texture of complex 3 at 137 °C

Жүктеу (356KB)
4. Fig. 3. Dependences of the effective magnetic moment (μeff in Bohr magnetons) on temperature: black line – complex 1, red line – complex 2, blue line – complex 3.

Жүктеу (119KB)
5. Fig. 4. EPR spectra of complex 2 (a) and 3 (b) at different temperatures.

Жүктеу (412KB)
6. Fig. 5. Results of simulating the spectra of complex 2: experimental signal (red) and simulated spectrum (blue) and its components from the BC and NS complexes (dashed lines) (a); temperature dependence of the integral intensities of the selected spectrum components (b), squares are BC components, triangles are NS components.

Жүктеу (306KB)

© Russian Academy of Sciences, 2024