Structures and anion-binding properties of M4L6 tetrahedral cage complexes with large central cavities

被引:84
作者
Paul, RL
Argent, SP
Jeffery, JC
Harding, LP
Lynam, JM
Ward, MD
机构
[1] Univ Bristol, Sch Chem, Bristol BS8 1TS, Avon, England
[2] Univ Sheffield, Dept Chem, Sheffield S3 7HF, S Yorkshire, England
[3] Univ Huddersfield, Dept Chem & Biol Sci, Huddersfield HD1 3DH, W Yorkshire, England
[4] Univ York, Dept Chem, York Y10 5DD, N Yorkshire, England
关键词
D O I
10.1039/b409809a
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Reaction of the bis-bidentate bridging ligand L-3, in which two bidentate chelating 3(2-pyridyl) pyrazole units are separated by a 3,3'-biphenyl spacer, with Co(II) salts affords tetranuclear cage complexes of composition [Co-4(L-3)(6)]X-8 (X=[BF4](-), [ClO4](-), [PF6](-) or I-) in which four 6-coordinate Co(II) ions in an approximately tetrahedral array are connected by six bis-bidentate bridging ligands, one spanning each of the six edges of the Co-4 tetrahedron. In every case, X-ray crystallography reveals that the 'apical' Co(II) ion has a fac tris-chelate geometry, whereas the other three Co(II) ions have mer tris-chelate geometries, resulting in (non-crystallographic) C-3 symmetry for the cages; that this structure is retained in solution is confirmed by H-1 NMR spectroscopy of the paramagnetic cages. In every case one of the anions is located inside the central cavity of the cage, with the remaining seven outside. We found no clear evidence for an anion-based templating effect. The cage superstructure is sufficiently large to leave gaps in the centres of the faces through which the internal and external anions can exchange. Variable-temperature F-19 NMR spectroscopy was used to investigate the dynamic behaviour of the cages with X= [BF4](-) and [PF6](-) in MeCN solution: in both cases two separate signals, corresponding to external and internal anions, are clear at 233 K which have coalesced to a single signal at room temperature. Analysis of the linewidth of the minor signal (for the internal anion) at various temperatures below coalescence gave an activation energy for anion exchange of ca. 50 kJ mol(-1) in each case, a figure which suggests that anion exchange can occur via a conformational rearrangement of the cage superstructure in solution rather than opening of the cavity by cleavage of metal - ligand bonds.
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页码:3453 / 3458
页数:6
相关论文
共 28 条
[11]  
Holliday BJ, 2001, ANGEW CHEM INT EDIT, V40, P2022, DOI 10.1002/1521-3773(20010601)40:11<2022::AID-ANIE2022>3.0.CO
[12]  
2-D
[13]   The role of guest molecules in the self-assembly of metal-ligand clusters [J].
Johnson, DW ;
Raymond, KN .
SUPRAMOLECULAR CHEMISTRY, 2001, 13 (06) :639-659
[14]   Self-assembled M6L4-type coordination nanocage with 2,2′-bipyridine ancillary ligands.: Facile crystallization and X-ray analysis of shape-selective enclathration of neutral guests in the cage [J].
Kusukawa, T ;
Fujita, M .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (45) :13576-13582
[15]   Self-assembly of discrete cyclic nanostructures mediated by transition metals [J].
Leininger, S ;
Olenyuk, B ;
Stang, PJ .
CHEMICAL REVIEWS, 2000, 100 (03) :853-907
[16]   Anion-templated self-assembly of tetrahedral cage complexes of cobalt(II) with bridging ligands containing two bidentate pyrazolylpyridine binding sites [J].
Paul, RL ;
Bell, ZR ;
Jeffery, JC ;
McCleverty, JA ;
Ward, MD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (08) :4883-4888
[17]   Complexes of a bis-bidentate ligand with d10 ions:: a mononuclear complex with Ag(I), and a tetrahedral cage complex with Zn(II) which encapsulates a fluoroborate anion [J].
Paul, RL ;
Bell, ZR ;
Jeffery, JC ;
Harding, LP ;
McCleverty, JA ;
Ward, MD .
POLYHEDRON, 2003, 22 (05) :781-787
[18]   Effects of metal co-ordination geometry on self-assembly: a dinuclear double helicate complex and a tetranuclear cage complex of a new bis-bidentate bridging ligand [J].
Paul, RL ;
Couchman, SM ;
Jeffery, JC ;
McCleverty, JA ;
Reeves, ZR ;
Ward, MD .
JOURNAL OF THE CHEMICAL SOCIETY-DALTON TRANSACTIONS, 2000, (06) :845-851
[19]  
Saalfrank RW, 2000, STRUCT BOND, V96, P149
[20]  
Sandstrom J., 1982, Dynamic NMR Spectroscopy