Journal Article10.1002/ANIE.200250152
A self-assembled 2D molecule-based magnet: the honeycomb layered material [Co3Cl4(H2O)2[Co(Hbbiz)3]2]
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TL;DR: The most effective bridging groups with respect to magnetic exchange interactions are cyanide, dicyanamide, and oxalate as mentioned in this paper, which can mediate sufficiently strong magnetic interactions between metal ions such that bulk magnetic ordering can occur.
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Abstract: Research in the area of molecule-based magnets is rapidly expanding, owing, in part, to numerous breakthroughs in the past decade.[1] The preparation of solid-state architectures of varying dimensionalities from specifically tailored paramagnetic building blocks has proven to be very successful, and also clearly multidisciplinary. Materials science and supramolecular chemistry efforts have joined forces with classical organic and inorganic chemistry in the design of solid-state materials whose magnetic properties rival, and sometimes even exceed, those of classic inorganic solids.[2] The moleculebased strategy allows for the preparation of unusual materials that cannot otherwise be obtained, for example, materials that combine two or more physical properties in the same compound[3] or molecules with magnetic bistability.[4] The solid-state structures of the majority of molecule-based magnetic materials consist of extended networks of paramagnetic metal ions held in close proximity by bridging ligands that allow for magnetic exchange. The dimensionality of the system dictates the overall magnetic properties and can be controlled by the use of capping ligands[5] or templating counterions.[6] Unfortunately, few ligands are capable of mediating sufficiently strong magnetic interactions between metal ions such that bulk magnetic ordering can occur. Apart from monoatomic ligands (such as oxide or halide bridges), the most effective bridging groups with respect to magnetic exchange interactions are cyanide,[7] dicyanamide,[8] and oxalate.[9] Common features of these ligands are that they contain only a small number of atoms, and that they offer a p as well as a s pathway for magnetic superexchange interactions. Organic radicals have also been successfully applied
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Citations
Silver(I) coordination architectures with quinoxaline-based N,S-donor ligands: structures and luminescent properties
TL;DR: In this paper, three quinoxaline-based ligands with N,S-bidentate chelating sites were synthesized and their coordination behavior with Ag(I) was studied.
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Synthesis, X-ray crystal structures, and computational studies of 1,1'-bridged 4,4'-diaryl-2,2'-bibenzimidazoles: building blocks for supramolecular structures.
Derik K. Frantz,Ashley A. Sullivan,Yoshizumi Yasui,Anthony Linden,Kim K. Baldridge,Jay S. Siegel +5 more
TL;DR: A series of C-shaped, 1,1'-alkyl-bridged 4,4'-diaryl-2,2'-bibenzimidazoles has been synthesized and packing diagrams demonstrate that these molecules either form linear intercalated molecular chains or include solvent molecules in the solid state.
Synthesis, characterization and crystal structures of 2,4-di(2-aminopyridine)-6-methypyrimidine (dapmp), [Cu(dapmp)Cl2] and [Cu(dapmp)(CH3COO)2] .H2O
TL;DR: In this article, the new ligand dapmp has been synthesized and the reactions of CuCl2· 2H2O and Cu(CH3COO)2· H2O in methanol afforded two crystalline polymorphic forms.
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From Infinite Tubular Arrays to Discrete Molecules and Back: An Example of Reversible Ring-opening Polymerization in Silver(I)–diphosphazane Chemistry
TL;DR: In this article, the reaction of AgX with the diphosphazane ligand L gives polymeric complexes, which exhibit a completely reversible ring-opening polymerization-depolymerization relationship with the dinuclear and mononuclear complexes.
7
Structural and magnetic investigation of CoII/MnII-based MIL-53 analogues with mixed ligands of neutral N-oxides and organic carboxylates
TL;DR: In this paper, two CoII-based MIL-53 analogues Co(PNO)(BDC) (1) and Co(MPNO) (2) were synthesized by hydrothermal methods with neutral μ2-oxo bridging ligands: pyridyl Noxide (PNO) and 4-methylpyridine N-oxide (MPNO), and 1,4-benzenedicarboxylic acid (H2BDC).
7
References
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Eugenio Coronado,José Ramón Galán-Mascarós,José Ramón Galán-Mascarós,Carlos J. Gómez-García,Vladimir Laukhin,Vladimir Laukhin +5 more
TL;DR: The synthesis of single crystals formed by infinite sheets of this magnetic coordination polymer interleaved with layers of conducting BEDT-TTF cations are reported, and it is shown that this molecule-based compound displays ferromagnetism and metallic conductivity.
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TL;DR: In this paper, a tutorial of typical magnetic behavior of molecular materials is presented and three distinct models (intramolecular spin coupling through orthogonal orbitals in the same spatial region within a molecule/ion, intermolecular spins coupling through pairwise configuration interaction between spin-containing moieties, and dipole-dipole, through-space interactions) which enable the design of new molecular-based magnetic materials are discussed.
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