Tretyakov Evgeny V, Petunin Pavel V, Zhivetyeva Svetlana I, Gorbunov Dmitry E, Gritsan Nina P, Fedin Matvey V, Stass Dmitri V, Samoilova Rimma I, Bagryanskaya Irina Yu, Shundrina Inna K, Bogomyakov Artem S, Kazantsev Maxim S, Postnikov Pavel S, Trusova Marina E, Ovcharenko Victor I
N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Leninsky Ave. 47, Moscow 119991, Russian Federation.
Tomsk Polytechnic University, Lenin Ave. 30, Tomsk 634050, Russian Federation.
J Am Chem Soc. 2021 Jun 2;143(21):8164-8176. doi: 10.1021/jacs.1c02938. Epub 2021 May 21.
Thermally resistant air-stable organic triradicals with a quartet ground state and a large energy gap between spin states are still unique compounds. In this work, we succeeded to design and prepare the first highly stable triradical, consisting of oxoverdazyl and nitronyl nitroxide radical fragments, with a quartet ground state. The triradical and its diradical precursor were synthesized via a palladium-catalyzed cross-coupling reaction of diiodoverdazyl with nitronyl nitroxide-2-ide gold(I) complex. Both paramagnetic compounds were fully characterized by single-crystal X-ray diffraction analysis, superconducting quantum interference device magnetometry, EPR spectroscopy in various matrices, and cyclic voltammetry. In the diradical, the verdazyl and nitronyl nitroxide centers demonstrated full reversibility of redox process, while for the triradical, the electrochemical reduction and oxidation proceed at practically the same redox potentials, but become quasi-reversible. A series of high-level CASSCF/NEVPT2 calculations was performed to predict inter- and intramolecular exchange interactions in crystals of di- and triradicals and to establish their magnetic motifs. Based on the predicted magnetic motifs, the temperature dependences of the magnetic susceptibility were analyzed, and the singlet-triplet (135 ± 10 cm) and doublet-quartet (17 ± 2 and 152 ± 19 cm) splitting was found to be moderate. Unique high stability of synthesized verdazyl-nitronylnitroxide triradical opens new perspectives for further functionalization and design of high-spin systems with four or more spins.
具有四重基态且自旋态之间能量间隙较大的耐热空气稳定有机三自由基仍然是独特的化合物。在这项工作中,我们成功设计并制备了首个由氧代二氮杂芴基和硝酮基氮氧化物自由基片段组成的具有四重基态的高度稳定三自由基。该三自由基及其双自由基前体是通过二碘代二氮杂芴基与硝酮基氮氧化物 -2- 碘金(I)配合物的钯催化交叉偶联反应合成的。这两种顺磁性化合物均通过单晶X射线衍射分析、超导量子干涉仪磁力测量、各种基质中的电子顺磁共振光谱和循环伏安法进行了全面表征。在双自由基中,二氮杂芴基和硝酮基氮氧化物中心表现出氧化还原过程的完全可逆性,而对于三自由基,电化学还原和氧化在几乎相同的氧化还原电位下进行,但变为准可逆。进行了一系列高水平的CASSCF/NEVPT2计算,以预测双自由基和三自由基晶体中的分子间和分子内交换相互作用,并确定它们的磁基序。基于预测的磁基序,分析了磁化率的温度依赖性,发现单重态 - 三重态(135±10 cm)和双重态 - 四重态(17±2和152±19 cm)分裂适中。合成的二氮杂芴基 - 硝酮基氮氧化物三自由基的独特高稳定性为具有四个或更多自旋的高自旋系统的进一步功能化和设计开辟了新的前景。