Department of Physics, 2 Science Drive 3, National University of Singapore, Singapore 117542, Singapore.
J Am Chem Soc. 2012 Oct 17;134(41):17286-90. doi: 10.1021/ja3077654. Epub 2012 Oct 5.
Even though metal-organic frameworks (MOFs) derived from antiferromagnetic dimeric-Cu(II) building units and nonmagnetic molecular linkers are known to exhibit unexpected ferromagnetic behavior, a comprehensive understanding of the underlying mechanism remains elusive. Using a combined theoretical and experimental approach, here we reveal the origin of the long-range ferromagnetic coupling in a series of MOFs, constructed from antiferromagnetic dimeric-Cu(II) building blocks. Our studies show that the strong localization of copper vacancy states favors spontaneous spin polarization and formation of local moment. These copper vacancy-induced moments are coupled via the itinerant electrons in the conjugated aromatic linkers to establish a long-range ferromagnetic ordering. The proposed mechanism is supported by direct experimental evidence of copper vacancies and the magnetic hysteresis (M-H) loops.
尽管源自反铁磁二聚体-Cu(II)建筑单元和非磁性分子连接体的金属有机骨架 (MOFs) 已知表现出意外的铁磁行为,但对其潜在机制仍难以理解。使用组合理论和实验方法,我们在这里揭示了一系列由反铁磁二聚体-Cu(II)建筑块构建的 MOFs 中长程铁磁耦合的起源。我们的研究表明,铜空位态的强烈局域化有利于自发自旋极化和局部磁矩的形成。这些由铜空位诱导的磁矩通过共轭芳族连接体中的巡游电子耦合,以建立长程铁磁有序。所提出的机制得到了铜空位的直接实验证据和磁滞回线 (M-H) 的支持。