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Dive into the research topics where Nadezhda V. Vasilieva is active.

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Featured researches published by Nadezhda V. Vasilieva.


Journal of Physical Chemistry A | 2011

Interaction of 1,2,5-Chalcogenadiazole Derivatives with Thiophenolate: Hypercoordination with Formation of Interchalcogen Bond versus Reduction to Radical Anion

Elizaveta A. Suturina; Nikolay A. Semenov; Anton V. Lonchakov; Irina Yu. Bagryanskaya; Yuri V. Gatilov; Irina G. Irtegova; Nadezhda V. Vasilieva; Enno Lork; Riidiger Mews; Nina P. Gritsan; Andrey V. Zibarev

According to the DFT calculations, [1,2,5]thiadiazolo[3,4-c][1,2,5]thiadiazole (4), [1,2,5]selenadiazolo[3,4-c][1,2,5]thiadiazole (5), 3,4-dicyano-1,2,5-thiadiazole (6), and 3,4-dicyano-1,2,5-selenadiazole (7) have nearly the same positive electron affinity (EA). Under the CV conditions they readily produce long-lived π-delocalized radical anions (π-RAs) characterized by EPR. Whereas 4 and 5 were chemically reduced into the π-RAs with thiophenolate (PhS(-)), 6 did not react and 7 formed a product of hypercoordination at the Se center (9) isolated in the form of the thermally stable salt [K(18-crown-6)][9] (10). The latter type of reactivity has never been observed previously for any 1,2,5-chalcogenadiazole derivatives. The X-ray structure of salt 10 revealed that the Se-S distance in the anion 9 (2.722 Å) is ca. 0.5 Å longer than the sum of the covalent radii of these atoms but ca. 1 Å shorter than the sum of their van der Waals radii. According to the QTAIM and NBO analysis, the Se-S bond in 9 can be considered a donor-acceptor bond whose formation leads to transfer of ca. 40% of negative charge from PhS(-) onto the heterocycle. For various PhS(-)/1,2,5-chalcogenadiazole reaction systems, thermodynamics and kinetics were theoretically studied to rationalize the interchalcogen hypercoordination vs reduction to π-RA dichotomy. It is predicted that interaction between PhS(-) and 3,4-dicyano-1,2,5-telluradiazole (12), whose EA slightly exceeds that of 6 and 7, will lead to hypercoordinate anion (17) with the interchalcogen Te-S bond being stronger than the Se-S bond observed in anion 9.


Inorganic Chemistry | 2013

Bis(toluene)chromium(I) [1,2,5]Thiadiazolo[3,4-c][1,2,5]thiadiazolidyl and [1,2,5]Thiadiazolo[3,4-b]pyrazinidyl: New Heterospin (S1 = S2 = 1/2) Radical-Ion Salts

Nikolay A. Semenov; Nikolay A. Pushkarevsky; Elizaveta A. Suturina; Elena A. Chulanova; Natalia V. Kuratieva; Artem S. Bogomyakov; Irina G. Irtegova; Nadezhda V. Vasilieva; Lidia S. Konstantinova; Nina P. Gritsan; Oleg A. Rakitin; Victor I. Ovcharenko; Sergey N. Konchenko; Andrey V. Zibarev

Bis(toluene)chromium(0), Cr(0)(η(6)-C7H8)2 (3), readily reduced [1,2,5]thiadiazolo[3,4-c][1,2,5]thiadiazole (1) and [1,2,5]thiadiazolo[3,4-b]pyrazine (2) in a tetrahydrofuran solvent with the formation of heterospin, S1 = S2 = ½, radical-ion salts [3](+)[1](-) (4) and [3](+)[2](-) (5) isolated in high yields. The salts 4 and 5 were characterized by single-crystal X-ray diffraction (XRD), solution and solid-state electron paramagnetic resonance, and magnetic susceptibility measurements in the temperature range 2-300 K. Despite the formal similarity of the salts, their crystal structures were very different and, in contrast to 4, in 5 anions were disordered. For the XRD structures of the salts, parameters of the Heisenberg spin Hamiltonian were calculated using the CASSCF/NEVPT2 and broken-symmetry density functional theory approaches, and the complex magnetic motifs featuring the dominance of antiferromagnetic (AF) interactions were revealed. The experimental χT temperature dependences of the salts were simulated using the Van Vleck formula and a diagonalization of the matrix of the Heisenberg spin Hamiltonian for the clusters of 12 paramagnetic species with periodic boundary conditions. According to the calculations and χT temperature dependence simulation, a simplified magnetic model can be suggested for the salt 4 with AF interactions between the anions ([1](-)···[1](-), J1 = -5.77 cm(-1)) and anions and cations ([1](-)···[3](+), J2 = -0.84 cm(-1)). The magnetic structure of the salt 5 is much more complex and can be characterized by AF interactions between the anions, [2](-)···[2](-), and by both AF and ferromagnetic (FM) interactions between the anions and cations, [2](-)···[3](+). The contribution from FM interactions to the magnetic properties of the salt 5 is in qualitative agreement with the positive value of the Weiss constant Θ (0.4 K), whereas for salt 4, the constant is negative (-7.1 K).


Inorganic Chemistry | 2015

Synthesis and properties of the heterospin (S1 = S2 = 1/2) radical-ion salt bis(mesitylene)molybdenum(I) [1,2,5]thiadiazolo[3,4-c][1,2,5]thiadiazolidyl

Nikolay A. Pushkarevsky; Nikolay A. Semenov; Alexey A. Dmitriev; Natalia V. Kuratieva; Artem S. Bogomyakov; Irina G. Irtegova; Nadezhda V. Vasilieva; Bela E. Bode; Nina P. Gritsan; Lidia S. Konstantinova; J. Derek Woollins; Oleg A. Rakitin; Sergey N. Konchenko; Victor I. Ovcharenko; Andrey V. Zibarev

Low-temperature interaction of [1,2,5]thiadiazolo[3,4-c][1,2,5]thiadiazole (1) with MoMes2 (Mes = mesitylene/1,3,5-trimethylbenzene) in tetrahydrofuran gave the heterospin (S1 = S2 = (1)/2) radical-ion salt [MoMes2](+)[1](-) (2) whose structure was confirmed by single-crystal X-ray diffraction (XRD). The structure revealed alternating layers of the cations and anions with the Mes ligands perpendicular, and the anions tilted by 45°, to the layer plane. At 300 K the effective magnetic moment of 2 is equal to 2.40 μB (theoretically expected 2.45 μB) and monotonically decreases with lowering of the temperature. In the temperature range 2-300 K, the molar magnetic susceptibility of 2 is well-described by the Curie-Weiss law with parameters C and θ equal to 0.78 cm(3) K mol(-1) and -31.2 K, respectively. Overall, the magnetic behavior of 2 is similar to that of [CrTol2](+)[1](-) and [CrCp*2](+)[1](-), i.e., changing the cation [MAr2](+) 3d atom M = Cr (Z = 24) with weak spin-orbit coupling (SOC) to a 4d atom M = Mo (Z = 42) with stronger SOC does not affect macroscopic magnetic properties of the salts. For the XRD structure of salt 2, parameters of the Heisenberg spin-Hamiltonian were calculated using the broken-symmetry DFT and CASSCF approaches, and the complex 3D magnetic structure with both the ferromagnetic (FM) and antiferromagnetic (AF) exchange interactions was revealed with the latter as dominating. Salt 2 is thermally unstable and slowly loses the Mes ligands upon storage at ambient temperature. Under the same reaction conditions, interaction of 1 with MoTol2 (Tol = toluene) proceeded with partial loss of the Tol ligands to afford diamagnetic product.


Archive | 2012

CCDC 805247: Experimental Crystal Structure Determination

Elizaveta A. Suturina; Nikolay A. Semenov; Anton V. Lonchakov; I.Yu. Bagryanskaya; Yury V. Gatilov; Irina G. Irtegova; Nadezhda V. Vasilieva; Enno Lork; R. Mews; Nina P. Gritsan; Andrey V. Zibarev

Related Article: E.A.Suturina, N.A.Semenov, A.V.Lonchakov, I.Yu.Bagryanskaya, Y.V.Gatilov, I.G.Irtegova, N.V.Vasilieva, E.Lork, R.Mews, N.P.Gritsan, A.V.Zibarev|2011|J.Phys.Chem.A|115|4851|doi:10.1021/jp2019523


Inorganic Chemistry | 2005

[1,2,5]Thiadiazolo[3,4-c][1,2,5]thiadiazolidyl: a long-lived radical anion and its stable salts.

Alexander Yu. Makarov; Irina G. Irtegova; Nadezhda V. Vasilieva; Irina Yu. Bagryanskaya; Tobias Borrmann; Yuri V. Gatilov; Enno Lork; R. Mews; Wolf-Dieter Stohrer; Andrey V. Zibarev


European Journal of Inorganic Chemistry | 2007

[1,2,5]Selenadiazolo[3,4-c][1,2,5]thiadiazole and [1,2,5]Selenadiazolo[3,4-c][1,2,5]thiadiazolidyl – A Synthetic, Structural, and Theoretical Study†

Irina Yu. Bagryanskaya; Yuri V. Gatilov; Nina P. Gritsan; V. N. Ikorskii; Irina G. Irtegova; Anton V. Lonchakov; Enno Lork; R. Mews; Victor I. Ovcharenko; Nikolay A. Semenov; Nadezhda V. Vasilieva; Andrey V. Zibarev


Journal of Physical Organic Chemistry | 2010

Redox properties and radical anions of fluorinated 2,1,3‐benzothia(selena)diazoles and related compounds

Nadezhda V. Vasilieva; Irina G. Irtegova; Nina P. Gritsan; Anton V. Lonchakov; Alexander Yu. Makarov; Leonid A. Shundrin; Andrey V. Zibarev


Chemical Science | 2015

Diaryldichalcogenide radical cations

Ole Mallow; Monther A. Khanfar; Moritz Malischewski; Pamela Finke; Malte Hesse; Enno Lork; Timo Augenstein; Frank Breher; Jeffrey Harmer; Nadezhda V. Vasilieva; Andrey V. Zibarev; Artem S. Bogomyakov; Konrad Seppelt; Jens Beckmann


Polyhedron | 2014

A novel sulfur–nitrogen π-heterocyclic radical anion, (6H-1,2,3-benzodithiazol-6-ylidene)malononitrilidyl, and its homo- and heterospin salts

Alexander Yu. Makarov; Elena A. Chulanova; Nikolay A. Semenov; Nikolay A. Pushkarevsky; Anton V. Lonchakov; Artem S. Bogomyakov; Irina G. Irtegova; Nadezhda V. Vasilieva; Enno Lork; Nina P. Gritsan; S. N. Konchenko; Victor I. Ovcharenko; Andrey V. Zibarev


Tetrahedron | 2014

1,2,5-Thiadiazole 2-oxides: selective synthesis, structural characterization, and electrochemical properties

Lidia S. Konstantinova; Ekaterina A. Knyazeva; Natalia V. Obruchnikova; Nadezhda V. Vasilieva; Irina G. Irtegova; Yulia V. Nelyubina; Irina Yu. Bagryanskaya; Leonid A. Shundrin; Zhanna Yu. Sosnovskaya; Andrey V. Zibarev; Oleg A. Rakitin

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Irina G. Irtegova

Russian Academy of Sciences

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Andrey V. Zibarev

Russian Academy of Sciences

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Leonid A. Shundrin

Novosibirsk State University

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Nina P. Gritsan

Novosibirsk State University

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Anton V. Lonchakov

Novosibirsk State University

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Nikolay A. Semenov

Russian Academy of Sciences

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