Sorace Lorenzo, Dmitriev Alexey A, Perfetti Mauro, Vostrikova Kira E
Department of Chemistry "U. Schiff", University of Florence and INSTM Research Unit Via della Lastruccia 3-13, Sesto Fiorentino 50019 Firenze Italy
Voevodsky Institute of Chemical Kinetics and Combustion, Siberian Branch, Russian Academy of Sciences 630090 Novosibirsk Russia.
Chem Sci. 2024 Nov 26;16(1):218-232. doi: 10.1039/d4sc05035e. eCollection 2024 Dec 18.
Radical lanthanide complexes are appealing platforms to investigate the possibility to engineer relevant magnetic couplings between the two magnetic centers by exploiting the strongly donating magnetic orbitals of the radical. In this paper, we report a spectroscopic and magnetic study on [LnRad(NO)], where Ln = Eu or Lu and Rad is the tridentate tripodal nitroxyl radical 4,4-dimethyl-2,2-bis(pyridin-2-yl)-1,3-oxazolidine-3-oxyl. A thorough magnetic investigation by Electron Paramagnetic Resonance (EPR) spectroscopy and magnetometry, fully supported by calculations, allowed us to unravel an unprecedentedly large antiferromagnetic coupling between the Eu and the radical ( = +19.5 cm, + convention). Remarkably, both europium and lutetium complexes showed slow magnetization dynamics below 20 K. The field and temperature dependent relaxation dynamics, dominated by Raman and direct processes were modelled simultaneously, allowing us to assess that the Raman process is field dependent.
稀土自由基配合物是很有吸引力的平台,可用于研究通过利用自由基的强供体磁性轨道来设计两个磁性中心之间相关磁耦合的可能性。在本文中,我们报道了对[LnRad(NO)]的光谱和磁性研究,其中Ln = Eu或Lu,Rad是三齿三脚架型硝酰自由基4,4-二甲基-2,2-双(吡啶-2-基)-1,3-恶唑烷-3-氧基。通过电子顺磁共振(EPR)光谱和磁强计进行的全面磁性研究,在计算的充分支持下,使我们能够揭示Eu与自由基之间前所未有的大反铁磁耦合(= +19.5 cm,采用+ 惯例)。值得注意的是,铕和镥配合物在20 K以下均表现出缓慢的磁化动力学。由拉曼和直接过程主导的场和温度依赖的弛豫动力学被同时建模,使我们能够评估拉曼过程是场依赖的。