Development of the Cluster Chemistry, Supramolecular Chemistry and Chemistry of Metal-Organic Frameworks by Professor Vladimir P. Fedin and His School
- Авторлар: Sokolov M.N.1, Dybtsev D.N.1
-
Мекемелер:
- Nikolaev Institute of Inorganic Chemistry, Siberian Branch of the Russian Academy of Sciences
- Шығарылым: Том 50, № 9 (2024)
- Беттер: 535-543
- Бөлім: Articles
- URL: https://rjonco.com/0132-344X/article/view/667660
- DOI: https://doi.org/10.31857/S0132344X24090017
- EDN: https://elibrary.ru/LXUZED
- ID: 667660
Дәйексөз келтіру
Аннотация
The article briefly summarizes the main scientific directions contributed to and developed by the outstanding scientist—a leader in the field of coordination chemistry, cluster chemistry, supramolecular chemistry and chemistry of metal-organic coordination polymers, Corresponding Member of the Russian Academy of Sciences Vladimir Petrovich Fedin.
Негізгі сөздер
Толық мәтін

Авторлар туралы
M. Sokolov
Nikolaev Institute of Inorganic Chemistry, Siberian Branch of the Russian Academy of Sciences
Хат алмасуға жауапты Автор.
Email: caesar@niic.nsc.ru
Ресей, Novosibirsk
D. Dybtsev
Nikolaev Institute of Inorganic Chemistry, Siberian Branch of the Russian Academy of Sciences
Email: dan@niic.nsc.ru
Ресей, Novosibirsk
Әдебиет тізімі
- Lemenovskii D.A., Fedin V.P. // J. Organometal. Chem. 1977. V. 132. P. 11.
- Müller A., Fedin V., Hegetschweiler K., Amrein W. // J. Chem. Soc. Chem. Commun. 1992. № 24. P. 1795.
- Sokolov N.M., Kalinina I.V., Peresypkina E.V. et al. // Angew. Chem. Int. Ed. 2008. V. 47. P. 1465.
- Müller A., Fedin V.P., Kuhlmann C. et al. // Chem. Commun. 1999. P. 1189.
- Izarova N.V., Sokolov M.N., Kado E. et al. // Russ. Chem. Bull. 2004. V. 53. № 7. P. 1503.
- Fedin V.P., Virovets A.V., Kalinina I.V. et al. // Eur. J. Inorg. Chem. 2000. P. 2341.
- Fedin V.P., Kalinina I.V., Virovets A.V. et al. // Russ. Chem. Bull. 2001. V. 50. № 9. P. 1525.
- Sokolov M.N., Dybtsev D.N., Fedin V.P. // Russ. Chem. Bull. 2003. V. 52. № 5. P. 1041.
- Samsonenko D.G., Lipkowksi J., Gerasko O.A. et al. // Eur. J. Inorg. Chem. 2002. P. 2380.
- Gerasko O.A., Mainicheva E.A., Naumov D.Yu. et al. // Inorg. Chem. 2005. V. 44. P. 4133.
- Sokolov M.N., Virovets A.V., Dybtsev D.N. et al. // Angew. Chem., Int. Ed. 2000. V. 39. P. 1659.
- Eddaoudi M., Kim J., Rosi N. et al. // Science. 2002. V. 295, P. 469.
- Noro S., Kitagawa S., Kondo M. et al. // Angew. Chem., Int. Ed. 2000. V. 39 P. 2081.
- Férey G., Mellot-Draznieks C., Serre C. et al. // Science. 2005. V. 309. P. 2040.
- Yutkin, M.P., Dybtsev, D.N., and Fedin, V.P. // Usp. Khim. 2011. V. 80. P. 1061.
- Dybtsev D.N., Nuzhdin A.L., Chun H. et al. // Angew. Chem., Int. Ed. 2006. V. 45. P. 916.
- Nuzhdin A.L., Dybtsev D.N., Bryliakov K.P. et al. // J. Am. Chem. Soc. 2007. V. 129. P. 12958.
- Blake A.J., Champness N.R., Hubberstey P. et al. // Coord. Chem. Rev. 1999. V. 183. P. 117.
- Dybtsev D.N., Sapianik A.A., Fedin V.P. // Mendeleev Commun. 2017. V. 27. P. 321.
- Sapianik A.A., Fedin V.P. // Russ. J. Coord. Chem. 2020. V. 46. P. 443.
- Dybtsev D.N., Samsonenko D.G., Fedin V.P. // Russ. J. Coord. Chem. 2016. V. 42. P. 557.
- Agafonov M.A., Alexandrov V.E., Artyukhova N.A. et al. // J. Struc. Chem. 2022. V. 63. P. 671.
- Lysova A.A., Samsonenko D.G., Dorovatovskii P.V. et al. // J. Am. Chem. Soc. 2019. V. 141. P. 17260.
- Lysova A.A., Samsonenko D.G., Kovalenko K.A. et al. // Angew. Chem., Int. Ed. 2020. V. 59. P. 20249.
- Yu X., Ryadun A.A., Pavlov D.I. et al. // Angew. Chem. Int. Ed. 2023. V. 62. P. 202306680.
- Yu X., Ryadun A.A., Potapov A.S., Fedin V.P. et al. // J. Hazard. Mater. 2023. V. 452. P. 131289.
- Lysova A.A., Kovalenko K.A., Nizovtsev A.S. et al. // Chem. Eng. J. 2023. V. 453. P. 139642.
- Yu X., Ryadun A.A., Pavlov D.I. et al. // Adv. Mater. 2024. V. 36. P. 2311939.
- Gao E., Wu S., Wang J. et al. // Adv. Opt. Mater. 2020. V. 8. P. 1901659.
Қосымша файлдар
Қосымша файлдар
Әрекет
1.
JATS XML
Жүктеу (278KB)
Жүктеу (57KB)
4.
Fig. 1. Crystal structures of the adducts {[SiW11O39]2[Mo3S4(H2O)3(OH)]2}10- (left), {[P2W17O61]2[Mo3S4(H2O)3(OH)]2}14- (center), and {[Mo3S4(H2O)5]4[SiW10O36]4}16- (right).
Жүктеу (236KB)
5.
Fig. 2. View of the porous coordination framework constructed with [W4Q4(CN)12]6- chalcocyanide clusters (Q = S, Te; cluster fragments are shown as cubes).
Жүктеу (208KB)
Жүктеу (209KB)
7.
Fig. 4. Supramolecular associations of cucurbituril with one (left) or two (right) cluster aquacomplexes [M3Q4(H2O)9]4+ (M = Mo, W; Q = S, Se).
Жүктеу (236KB)
8.
Fig. 5. A 32-core Ga(III) aquacomplex isolated through the formation of a supramolecular adduct with cucurbituril.
Жүктеу (191KB)
9.
Fig. 6. Formation of layered dichalcogenide analogs (top) and intercalates with mercury atom (bottom) based on supramolecular chains of cucurbituril and chalcogenide cluster complexes.
Жүктеу (446KB)
Жүктеу (333KB)
11.
Fig. 8. Separation of natural gas components (methane, ethane, propane) on mesoporous metal-organic coordination polymer NIIC-20 series.
Жүктеу (320KB)
