Origin of Long-Range Ferromagnetic Ordering in Metal--Organic Frameworks with Antiferromagnetic Dimeric-Cu(II) Building Units.

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 a...

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Detalles Bibliográficos
Publicado en:Journal of the American Chemical Society Vol. 134; no. 41; pp. 17286 - 17291
Autores principales: Lei Shen, Shuo-Wang Yang, Shengchang Xiang, Tao Liu, Bangchuan Zhao, Man-Fai Ng, Jörg Göettlicher, Jiabao Yi, Sean Li, Lan Wang, Jun Ding, Banglin Chen, Su-Huai Wei, Yuan Ping Feng
Formato: Artículo
Publicado: American Chemical Society 10/17/2012
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Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario: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.