Delano Francis, Benner Florian, Jang Seoyun, Greer Samuel M, Demir Selvan
Department of Chemistry, Michigan State University 578 South Shaw Lane East Lansing Michigan 48824 USA
Los Alamos National Laboratory (LANL) Los Alamos New Mexico 87545 USA.
Chem Sci. 2024 Jul 26;15(33):13389-13404. doi: 10.1039/d4sc03786c. eCollection 2024 Aug 22.
The generation of noncovalent intermolecular interactions represents a powerful method to control molecular vibrations and rotations. Combining these with the axial ligand field enforced by the metallocene ligand scaffold provides a dual-pronged approach in controlling the magnetic-relaxation pathways for dysprosium-based single-molecule magnets (SMMs). Here, we present the first implementation of 2,3,4,5-tetraiodopyrrole (TIPH) in its anionic form [TIP] as a ligand in three isostructural rare-earth metal complexes CpRE(TIP) (1-RE, RE = Y, Gd, and Dy; Cp = pentamethylcylopentadienyl), where the TIP ligand binds through the nitrogen and one iodine atom κ(N,I) to the metal centre. The shallow potential energy surface of the intermolecular σ-hole interaction yields distortions of the interatomic distances at elevated temperatures which were investigated by variable-temperature SCXRD. 1-RE constitute the first crystallographically characterized molecules containing TIP as a ligand for any metal ion, and 1-Dy is the first SMM that employs the TIP ligand. The structural dependence on temperature allowed the mechanism of magnetic relaxation to be explored through calculations at different temperatures. The electronic influence of the coordinated iodine substituent was probed magnetometry and cw-EPR spectroscopy on 1-Gd. To further scrutinize the impact of the iodine substituents on the physical properties, a second set of new complexes Cp*RE(DMP) (2-RE, RE = Y, and Dy) where DMP = 2,5-dimethylpyrrolyl were synthesized. Here, the DMP ligand binds similarly to the TIP ligand and represents an all-hydrocarbon analogue to 1-RE. 2-Dy constitutes the first SMM bearing a DMP ligand.
非共价分子间相互作用的产生是控制分子振动和旋转的一种强大方法。将这些相互作用与茂金属配体支架所施加的轴向配体场相结合,为控制基于镝的单分子磁体(SMM)的磁弛豫途径提供了一种双管齐下的方法。在此,我们首次以阴离子形式[ TIP ]将2,3,4,5 - 四碘吡咯(TIPH)作为配体应用于三种同构的稀土金属配合物CpRE(TIP)(1 - RE,RE = Y、Gd和Dy;Cp = 五甲基环戊二烯基)中,其中TIP配体通过氮原子和一个碘原子以κ(N,I)方式与金属中心结合。分子间σ - 空穴相互作用的浅势能面在高温下会导致原子间距离发生畸变,这通过变温单晶X射线衍射(SCXRD)进行了研究。1 - RE是首批通过晶体学表征含有TIP作为任何金属离子配体的分子,而1 - Dy是首个采用TIP配体的SMM。结构对温度的依赖性使得可以通过在不同温度下的计算来探索磁弛豫机制。通过对1 - Gd进行磁测量和连续波电子顺磁共振(cw - EPR)光谱研究了配位碘取代基的电子影响。为了进一步研究碘取代基对物理性质的影响,合成了第二组新的配合物Cp*RE(DMP)(2 - RE,RE = Y和Dy),其中DMP = 2,5 - 二甲基吡咯基。在此,DMP配体与TIP配体的结合方式类似,并且是1 - RE的全碳氢类似物。2 - Dy是首个带有DMP配体的SMM。