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Reactions of ytterbium and magnesium gallylene complexes with carbon dioxide and diphenylketene

Vladimir Alexseyevich Dodonov 1
Vladimir Alexseyevich Dodonov
Alexandra Anatol'evna Skatova 1
Alexandra Anatol'evna Skatova
Igor Leonidovich Fedushkin 1
Igor Leonidovich Fedushkin
Published 2022-09-05
CommunicationVolume 32, Issue 5, 582-584
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Dodonov V. A., Skatova A. A., Fedushkin I. L. Reactions of ytterbium and magnesium gallylene complexes with carbon dioxide and diphenylketene // Mendeleev Communications. 2022. Vol. 32. No. 5. pp. 582-584.
GOST all authors (up to 50) Copy
Dodonov V. A., Skatova A. A., Fedushkin I. L. Reactions of ytterbium and magnesium gallylene complexes with carbon dioxide and diphenylketene // Mendeleev Communications. 2022. Vol. 32. No. 5. pp. 582-584.
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TY - JOUR
DO - 10.1016/j.mencom.2022.09.004
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.09.004
TI - Reactions of ytterbium and magnesium gallylene complexes with carbon dioxide and diphenylketene
T2 - Mendeleev Communications
AU - Dodonov, Vladimir Alexseyevich
AU - Skatova, Alexandra Anatol'evna
AU - Fedushkin, Igor Leonidovich
PY - 2022
DA - 2022/09/05
PB - Mendeleev Communications
SP - 582-584
IS - 5
VL - 32
ER -
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@article{2022_Dodonov,
author = {Vladimir Alexseyevich Dodonov and Alexandra Anatol'evna Skatova and Igor Leonidovich Fedushkin},
title = {Reactions of ytterbium and magnesium gallylene complexes with carbon dioxide and diphenylketene},
journal = {Mendeleev Communications},
year = {2022},
volume = {32},
publisher = {Mendeleev Communications},
month = {Sep},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.09.004},
number = {5},
pages = {582--584},
doi = {10.1016/j.mencom.2022.09.004}
}
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Dodonov, Vladimir Alexseyevich, et al. “Reactions of ytterbium and magnesium gallylene complexes with carbon dioxide and diphenylketene.” Mendeleev Communications, vol. 32, no. 5, Sep. 2022, pp. 582-584. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.09.004.

Keywords

carbon dioxide
cycloaddition
gallylenes
ketenes
magnesium
non-innocent α-diimine ligands
X-ray diffraction
ytterbium

Abstract

Reactivity of ytterbium and magnesium complexes of gallylenes against carbon dioxide and diphenylketene has been assessed. Ytterbium complex of redox-active gallylene [{(dpp-bian)Ga}2Yb(DME)2] (dpp-bian = 1,2-bis[(2,6-diiso-propylphenyl)imino]acenaphthene) on treatment with CO2 gives complex [(dpp-bian)Ga(DME)Me], while the treatment of magnesium-stabilized gallylene[{(dpp-bian)Ga}2Mg(DME)2] with Ph2CCO affords cycloadduct [(dpp-bian)(Ph2CCO)GaMe].

References

3.
10.1016/j.mencom.2022.09.004_h0015
Jones
in The Group 13 Metals Aluminium, Gallium, Indium and Thallium: Chemical Patterns and Peculiarities, eds, 2011
4.
Well-Defined Rhodium-Gallium Catalytic Sites in a Metal-Organic Framework: Promoter-Controlled Selectivity in Alkyne Semihydrogenation to E-Alkenes.
Desai S.P., Ye J., Zheng J., Ferrandon M.S., Webber T.E., Platero-Prats A.E., Duan J., Garcia-Holley P., Camaioni D.M., Chapman K.W., Delferro M., Farha O.K., Fulton J.L., Gagliardi L., Lercher J.A., et. al.
Journal of the American Chemical Society, 2018
6.
Reductive Disproportionation of CO 2 Mediated by Bimetallic Nickelate(–I)/Group 13 Complexes
Vollmer M.V., Cammarota R.C., Lu C.C.
European Journal of Inorganic Chemistry, 2019
7.
Gauging metal Lewis basicity of zerovalent iron complexes via metal-only Lewis pairs
Braunschweig H., Dewhurst R.D., Hupp F., Kaufmann C., Phukan A.K., Schneider C., Ye Q.
Chemical Science, 2014
8.
Reactions of Digallanes with p- and d-Block Lewis Bases: Adducts, Bis(gallyl) Complexes, and Naked Ga+as Ligand
Schuster J.K., Muessig J.H., Dewhurst R.D., Braunschweig H.
Chemistry - A European Journal, 2018
11.
Formation of sub-valent carbenoid ligands by metal-mediated dehydrogenation chemistry: coordination and activation of H2Ga{(NDippCMe)2CH}
Turner J., Abdalla J.A., Bates J.I., Tirfoin R., Kelly M.J., Phillips N., Aldridge S.
Chemical Science, 2013
15.
Boryl substituted group 13 metallylenes: complexes with an iron carbonyl fragment
Dange D., Sindlinger C.P., Aldridge S., Jones C.
Chemical Communications, 2017
16.
Cycloaddition of isoselenocyanates to sodium and magnesium metallacycles
Dodonov V.A., Kushnerova O.A., Rumyantsev R.V., Novikov A.S., Osmanov V.K., Fedushkin I.L.
Dalton Transactions, 2022
17.
Synthesis and Crystal Structures of the Reaction Products of the Magnesium Acenaphthenediimine Complex with Tosyl Azide
Dodonov V.A., Skatova A.A., Fedushkin I.L.
Russian Journal of Coordination Chemistry/Koordinatsionnaya Khimiya, 2019
18.
Digallane with Redox-Active Diimine Ligand: Dualism of Electron-Transfer Reactions
Fedushkin I.L., Skatova A.A., Dodonov V.A., Chudakova V.A., Bazyakina N.L., Piskunov A.V., Demeshko S.V., Fukin G.K.
Inorganic Chemistry, 2014
19.
Cycloaddition versus Cleavage of the C=S Bond of Isothiocyanates Promoted by Digallane Compounds with Noninnocent α‐Diimine Ligands
Zhang W., Dodonov V.A., Chen W., Zhao Y., Skatova A.A., Fedushkin I.L., Roesky P.W., Wu B., Yang X.
Chemistry - A European Journal, 2018
20.
Gallium “Shears” for C=N and C=O Bonds of Isocyanates
Dodonov V.A., Chen W., Zhao Y., Skatova A.A., Roesky P.W., Wu B., Yang X., Fedushkin I.L.
Chemistry - A European Journal, 2019
21.
Activation and modification of carbon dioxide by redox-active low-valent gallium species
Dodonov V.A., Kushnerova O.A., Baranov E.V., Novikov A.S., Fedushkin I.L.
Dalton Transactions, 2021
22.
Activation of Nitrogen-Rich Substrates by Low-Valent, Redox-Active Aluminum Species
Chen W., Dodonov V.A., Sokolov V.G., Liu L., Baranov E.V., Zhao Y., Fedushkin I.L., Yang X.
Organometallics, 2021
23.
Reactions of Iso(thio)cyanates with Dialanes: Cycloaddition, Reductive Coupling, or Cleavage of the C═S or C═O Bond
Dodonov V.A., Chen W., Liu L., Sokolov V.G., Baranov E.V., Skatova A.A., Zhao Y., Wu B., Yang X., Fedushkin I.L.
Inorganic Chemistry, 2021
24.
Synthesis and ε-Caprolactone Polymerization Activity of Electron-Deficient Gallium and Aluminum Species Containing a Charged Redox-Active dpp-Bian Ligand
Dodonov V.A., Morozov A.G., Rumyantsev R.V., Fukin G.K., Skatova A.A., Roesky P.W., Fedushkin I.L.
Inorganic Chemistry, 2019
25.
Synthesis of Unsupported Ln–Ga Bonds by Salt Metathesis and Ga–Ga Bond Reduction
Sanden T., Gamer M.T., Fagin A.A., Chudakova V.A., Konchenko S.N., Fedushkin I.L., Roesky P.W.
Organometallics, 2012
26.
Gallium(I)−Lanthanide(II) Donor−Acceptor Bonds
Wiecko M., Roesky P.W.
Organometallics, 2007
27.
Gallyl lanthanide complexes containing unsupported Ln–Ga (Ln = Sm, Eu, Yb or Tm) bonds
28.
Reduction of Digallane [(dpp‐bian)GaGa(dpp‐bian)] with Group 1 and 2 Metals
Fedushkin I., Lukoyanov A., Tishkina A., Fukin G., Lyssenko K., Hummert M.
Chemistry - A European Journal, 2010
31.
Synthesis and decarbonylation chemistry of gallium phosphaketenes
Wilson D.W., Myers W.K., Goicoechea J.M.
Dalton Transactions, 2020
32.
Interaction of Multiple Bonds with NacNacGa: Oxidative Cleavage vs Coupling and Cyclization
Kassymbek A., Britten J.F., Spasyuk D., Gabidullin B., Nikonov G.I.
Inorganic Chemistry, 2019
33.
Data Collection, Reduction and Correction Program, CrysAlisPro 1.171.40.67a – Software Package, Rigaku OD, 2019
34.
SCALE3 ABSPACK: Empirical absorption correction, CrysAlisPro 1.171.40.67a – Software Package, Rigaku OD, 2019
35.
10.1016/j.mencom.2022.09.004_b0140
Sheldrick
Acta Crystallogr., 2015
36.
G. M. Sheldrick, SHELXTL, Version 6.14, Structure Determination Software Suite, Bruker AXS, Madison, WI, 2003.
37.
OLEX2: a complete structure solution, refinement and analysis program
Dolomanov O.V., Bourhis L.J., Gildea R.J., Howard J.A., Puschmann H.
Journal of Applied Crystallography, 2009