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Near-IR absorbing donor–acceptor charge-transfer gallium complex, an example from non-transition metal chemistry

Arina Valer'evna Maleeva 1
Arina Valer'evna Maleeva
Irina Vasilievna Ershova 1
Irina Vasilievna Ershova
Olesya Yuryevna Trofimova 1
Olesya Yuryevna Trofimova
Kseniya Vital'evna Arsenyeva 1
Kseniya Vital'evna Arsenyeva
Ilya Arkad'evich Yakushev 2
Ilya Arkad'evich Yakushev
Aleksandr Vladimirovich Piskunov 1
Aleksandr Vladimirovich Piskunov
Published 2022-01-03
CommunicationVolume 32, Issue 1, 83-86
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Maleeva A. V. et al. Near-IR absorbing donor–acceptor charge-transfer gallium complex, an example from non-transition metal chemistry // Mendeleev Communications. 2022. Vol. 32. No. 1. pp. 83-86.
GOST all authors (up to 50) Copy
Maleeva A. V., Ershova I. V., Trofimova O. Y., Arsenyeva K. V., Yakushev I. A., Piskunov A. V. Near-IR absorbing donor–acceptor charge-transfer gallium complex, an example from non-transition metal chemistry // Mendeleev Communications. 2022. Vol. 32. No. 1. pp. 83-86.
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TY - JOUR
DO - 10.1016/j.mencom.2022.01.027
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.01.027
TI - Near-IR absorbing donor–acceptor charge-transfer gallium complex, an example from non-transition metal chemistry
T2 - Mendeleev Communications
AU - Maleeva, Arina Valer'evna
AU - Ershova, Irina Vasilievna
AU - Trofimova, Olesya Yuryevna
AU - Arsenyeva, Kseniya Vital'evna
AU - Yakushev, Ilya Arkad'evich
AU - Piskunov, Aleksandr Vladimirovich
PY - 2022
DA - 2022/01/03
PB - Mendeleev Communications
SP - 83-86
IS - 1
VL - 32
ER -
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@article{2022_Maleeva,
author = {Arina Valer'evna Maleeva and Irina Vasilievna Ershova and Olesya Yuryevna Trofimova and Kseniya Vital'evna Arsenyeva and Ilya Arkad'evich Yakushev and Aleksandr Vladimirovich Piskunov},
title = {Near-IR absorbing donor–acceptor charge-transfer gallium complex, an example from non-transition metal chemistry},
journal = {Mendeleev Communications},
year = {2022},
volume = {32},
publisher = {Mendeleev Communications},
month = {Jan},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.01.027},
number = {1},
pages = {83--86},
doi = {10.1016/j.mencom.2022.01.027}
}
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Maleeva, Arina Valer'evna, et al. “Near-IR absorbing donor–acceptor charge-transfer gallium complex, an example from non-transition metal chemistry.” Mendeleev Communications, vol. 32, no. 1, Jan. 2022, pp. 83-86. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.01.027.

Keywords

catecholate
diimine
electronic spectroscopy
gallium
redox-active ligand
X-ray diffraction

Abstract

Gallium(III) catecholates with bipyridine ligand [(3,5-Cat)Ga(bipy)2]I and (3,6-Cat)GaI(bipy) (Cat is di-tert-butylcatecholate) were synthesized and characterized by single-crystal X-ray diffraction. The appearance of near-infrared ligand-to-ligand charge transfer for pentacoordinate complex was observed.

References

3.
Charge Photogeneration in Organic Solar Cells
Clarke T.M., Durrant J.R.
Chemical Reviews, 2010
4.
Fluorenyl Based Macrocyclic Polyradicaloids.
Lu X., Lee S., Hong Y., Phan H., Gopalakrishna T.Y., Herng T.S., Tanaka T., Sandoval-Salinas M.E., Zeng W., Ding J., Casanova D., Osuka A., Kim D., Wu J.
Journal of the American Chemical Society, 2017
5.
NIR J-aggregates of hydroazaheptacene tetraimides.
Cai K., Xie J., Zhao D.
Journal of the American Chemical Society, 2013
7.
Three-state near-infrared electrochromism at the molecular scale.
Cui B., Zhong Y., Yao J.
Journal of the American Chemical Society, 2015
9.
10.1016/j.mencom.2022.01.027_b0045
Cameron
Chem. Sci., 1807
10.
Near-infrared pigments based on ion-pair charge transfer salts of dicationic and dianionic metal-dithiolene [M(II) = Pd, Pt] complexes.
Espa D., Pilia L., Marchiò L., Mercuri M.L., Serpe A., Sessini E., Deplano P.
Dalton Transactions, 2013
12.
Bimetallic iron–iron and iron–zinc complexes of the redox-active ONO pincer ligand
Wong J.L., Higgins R.F., Bhowmick I., Cao D.X., Szigethy G., Ziller J.W., Shores M.P., Heyduk A.F.
Chemical Science, 2016
13.
Donor–Acceptor Ligand-to-Ligand Charge-Transfer Coordination Complexes of Nickel(II)
Kramer W.W., Cameron L.A., Zarkesh R.A., Ziller J.W., Heyduk A.F.
Inorganic Chemistry, 2014
14.
Class III delocalization and exciton coupling in a bimetallic bis-ligand radical complex.
Dunn T.J., Chiang L., Ramogida C.F., Hazin K., Webb M.I., Katz M.J., Storr T.
Chemistry - A European Journal, 2013
15.
Electronic Structure Description of a Doubly Oxidized Bimetallic Cobalt Complex with Proradical Ligands.
Clarke R.M., Hazin K., Thompson J.R., Savard D., Prosser K.E., Storr T.
Inorganic Chemistry, 2015
16.
Radical Localization in a Series of Symmetric NiIIComplexes with Oxidized Salen Ligands
Chiang L., Kochem A., Jarjayes O., Dunn T.J., Vezin H., Sakaguchi M., Ogura T., Orio M., Shimazaki Y., Thomas F., Storr T.
Chemistry - A European Journal, 2012
18.
The structure of a one-electron oxidized Mn(iii)-bis(phenolate)dipyrrin radical complex and oxidation catalysis control via ligand-centered redox activity.
Lecarme L., Chiang L., Moutet J., Leconte N., Philouze C., Jarjayes O., Storr T., Thomas F.
Dalton Transactions, 2016
19.
The Geometric and Electronic Structure of a One-Electron-Oxidized Nickel(II) Bis(salicylidene)diamine Complex
Storr T., Wasinger E., Pratt R., Stack T. .
Angewandte Chemie - International Edition, 2007
21.
Theoretical Study of One-Electron Oxidized Mn(III)- and Ni(II)-Salen Complexes: Localized vs Delocalized Ground and Excited States in Solution.
Aono S., Nakagaki M., Kurahashi T., Fujii H., Sakaki S.
Journal of Chemical Theory and Computation, 2014
23.
Stable anilinyl radicals coordinated to nickel: X-ray crystal structure and characterization.
Kochem A., Gellon G., Leconte N., Baptiste B., Philouze C., Jarjayes O., Orio M., Thomas F.
Chemistry - A European Journal, 2013
26.
Ligand Control of Donor–Acceptor Excited-State Lifetimes
Yang J., Kersi D.K., Giles L.J., Stein B.W., Feng C., Tichnell C.R., Shultz D.A., Kirk M.L.
Inorganic Chemistry, 2014
28.
Exploring excited states of Pt(ii) diimine catecholates for photoinduced charge separation
Scattergood P.A., Jesus P., Adams H., Delor M., Sazanovich I.V., Burrows H.D., Serpa C., Weinstein J.A.
Dalton Transactions, 2015
32.
Tuning Pt II ‐Based Donor–Acceptor Systems through Ligand Design: Effects on Frontier Orbitals, Redox Potentials, UV/Vis/NIR Absorptions, Electrochromism, and Photocatalysis
Sobottka S., Nößler M., Ostericher A.L., Hermann G., Subat N.Z., Beerhues J., Behr‐van der Meer M., Suntrup L., Albold U., Hohloch S., Tremblay J.C., Sarkar B.
Chemistry - A European Journal, 2020
36.
Complexes of Group III Metals based on o-Iminoquinone Ligands
Ershova I.V., Piskunov A.V.
Russian Journal of Coordination Chemistry/Koordinatsionnaya Khimiya, 2020
37.
Complexes of diamagnetic cations with radical anion ligands
Ershova I.V., Piskunov A.V., Cherkasov V.K.
Russian Chemical Reviews, 2020
40.
Tsys K.V., Chegerev M.G., Fukin G.K., Starikov A.G., Piskunov A.V.
Mendeleev Communications, 2020
41.
Mononuclear gallium complexes with the redox-active dmp-bian ligand (dmp-bian is 1,2-bis[(2,6-dimethylphenyl)imino]acenaphthene): synthesis and reactions with alkynes
42.
Meshcheryakova I.N., Arsenyeva K.V., Fukin G.K., Cherkasov V.K., Piskunov A.V.
Mendeleev Communications, 2020
43.
Crystal structure refinement withSHELXL
Sheldrick G.M.
Acta crystallographica. Section C, Structural chemistry, 2015
44.
The reduction of sterically hindered o-Quinone and o-Iminoquinone with gallium and "gaI"
Piskunov A.V., Maleeva A.V., Mescheryakova I.N., Fukin G.K.
European Journal of Inorganic Chemistry, 2012
45.
10.1016/j.mencom.2022.01.027_b0225
Batsanov
Russ. J. Inorg. Chem., 1991
46.
Multiple Reactivity of Sn II Complexes Bearing Catecholate and o ‐Amidophenolate Ligands
Chegerev M.G., Piskunov A.V., Maleeva A.V., Fukin G.K., Abakumov G.A.
European Journal of Inorganic Chemistry, 2016
47.
Indirect Magnetic Exchange between o-Iminosemiquinonate Ligands Controlled by Apical Substituent in Pentacoordinated Gallium(III) Complexes.
Piskunov A.V., Ershova I.V., Bogomyakov A.S., Starikov A.G., Fukin G.K., Cherkasov V.K.
Inorganic Chemistry, 2015
48.
Features of Magnetic Behavior in the Row of Pentacoordinated Bis‐ o ‐Iminobenzosemiquinonato Metal (Al, Ga, In) Complexes
Ershova I.V., Bogomyakov A.S., Fukin G.K., Piskunov A.V.
European Journal of Inorganic Chemistry, 2019
49.
Diradical hexacoordinated tin(IV) bis-o-iminobenzosemiquinonates: synthesis, structure and magnetic properties
Piskunov A.V., Meshcheryakova I.N., Piskunova M.S., Somov N.V., Bogomyakov A.S., Kubrin S.P.
Journal of Molecular Structure, 2019