Zayakin Igor A, Petunin Pavel V, Postnikov Pavel S, Dmitriev Alexey A, Gritsan Nina P, Dorovatovskii Pavel, Korlyukov Alexander, Fedin Matvey V, Bogomyakov Artem S, Akyeva Anna Ya, Novikov Roman A, Shangin Pavel G, Syroeshkin Mikhail A, Burykina Julia V, Tretyakov Evgeny V
N.D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences, Leninsky Ave. 47, Moscow 119991, Russian Federation.
Tomsk Polytechnic University, Tomsk 634050, Russian Federation.
J Am Chem Soc. 2024 May 15;146(19):13666-13675. doi: 10.1021/jacs.4c04391. Epub 2024 May 6.
High-spin organic tetraradicals with significant intramolecular exchange interactions have high potential for advanced technological applications and fundamental research, but examples reported to date exhibit limited stability and processability. In this work, we designed the first tetraradical based on an oxoverdazyl core and nitronyl nitroxide radicals and successfully synthesized it using a palladium-catalyzed cross-coupling reaction of an oxoverdazyl radical bearing three iodo-phenylene moieties with a gold(I) nitronyl nitroxide-2-ide complex in the presence of a recently developed efficient catalytic system. The molecular and crystal structures of the tetraradical were confirmed by single crystal X-ray diffraction analysis. The tetraradical possesses good thermal stability with decomposition onset at ∼125 °C in an inert atmosphere; in a toluene solution upon prolonged heating at 90 °C in air, no decomposition was observed. The resulting unique verdazyl-nitroxide conjugate was thoroughly studied using a range of experimental and theoretical techniques, such as SQUID magnetometry of polycrystalline powders, EPR spectroscopy in various matrices, cyclic voltammetry, and high-level quantum chemical calculations. All collected data confirm the high thermal stability of the resulting tetraradical and quintet multiplicity of its ground state, which makes the synthesis of this important paramagnet a new milestone in the field of creating high-spin systems.
具有显著分子内交换相互作用的高自旋有机四自由基在先进技术应用和基础研究方面具有很高的潜力,但迄今为止报道的实例显示出有限的稳定性和可加工性。在这项工作中,我们设计了首个基于氧代过氮杂环核心和氮氧自由基的四自由基,并在最近开发的高效催化体系存在下,通过钯催化的带有三个碘代亚苯基部分的氧代过氮杂环自由基与金(I)氮氧自由基-2-负离子配合物的交叉偶联反应成功合成了它。通过单晶X射线衍射分析确定了该四自由基的分子和晶体结构。该四自由基具有良好的热稳定性,在惰性气氛中分解起始温度约为125°C;在甲苯溶液中于空气中90°C长时间加热后,未观察到分解现象。使用一系列实验和理论技术,如多晶粉末的SQUID磁强计、各种基质中的EPR光谱、循环伏安法和高水平量子化学计算,对所得独特的连氮-氮氧共轭物进行了深入研究。所有收集到的数据证实了所得四自由基的高热稳定性及其基态的五重多重性,这使得这种重要顺磁体的合成成为高自旋体系创建领域的一个新里程碑。