Oxidative-addition reactions of molecular diiodine and dibromine to divalent organotin compounds. Crystal structures of bis[8-(dimethylamino)-1-naphthyl]tin(IV) dibromide and {2,6-[bis(dimethylamino)methyl]phenyl}- (4-tolyl)tin(IV) diodide
作者:Johann T.B.H. Jastrzebski、Paul A. van der Schaaf、Jaap Boersma、Gerard van Koten、Martin de Wit、Yuanfang Wang、Dick Heijdenrijk、Casper H. Stam
DOI:10.1016/0022-328x(91)86308-d
日期:1991.4
The reactions of bis[8-(dimethylamino)-1-naphthyl]tin(II) with dibromine or diiodine afford bis[8-(dimethylamino)-1-naphthyl]tin(IV) dibromide (1) and bis[8-(dimethylamino)-1-naphthyl]tin(IV) diiodide (2), respectively. Reaction of 2,6-[bis(dimethylamino)methyl]phenyl}(4-tolyl)tin(II) with diiodine gives 2,6-[bis(dimethylamino)Methyphenyl}(4-tolyl)tin(IV) diiodide (3) in quantitative yield. The crystal
Evidence for hexacoordinate tin centers in triorganotin halides containing two 8-(dimethylamino)-1-naphthyl ligands
作者:Johann T. B. H. Jastrzebski、Paul A. Van der Schaaf、Jaap Boersma、Gerard Van Koten、Dirk J. A. De Ridder、Dick Heijdenrijk
DOI:10.1021/om00040a023
日期:1992.4
A series of novel triorganotin halides, SnX[1-C10H6NMe2-8]2R, containing two potentially intramolecular-coordinating 8-(dimethylamino)-1-naphthyl groups has been synthesized and characterized. The compounds were prepared via oxidative addition of an alkyl halide RX (R = Me, X = I; R = Et, X = I; R = benzyl, X = Br) to bis[8-(dimethylamino)-1-naphthyl]tin(II). From one of these compounds (R = Me, X = I) the molecular structure in the solid state has been determined by X-ray diffraction methods: C25H27IN2Sn, orthorhombic, space group Pbca with a = 19.212 (3) angstrom, b = 25.540 (8) angstrom, c = 9.482 (1) angstrom, and Z = 8, final R = 0.052 for 1798 observed reflections. The tin center has a distorted-octahedral coordination geometry with mutual trans positions of the two C(1)naphthyl atoms, one of the coordinating nitrogen atoms and the iodine atom, and the other coordinating nitrogen atom and the methyl group at tin. The length of the Sn-N bond trans to the iodine atom is in the normal range as expected for a Sn-N coordination bond (2.53 (1) angstrom) while the Sn-N bond trans to the methyl group is extremely long (3.10 (1) angstrom). H-1, C-13, and Sn-119 NMR spectra of these triorganotin halides show that, at low temperature in solution, these compounds exist in two geometrically different forms, one as found in the solid state and one with the two C(1)naphthyl atoms, the two coordinating nitrogen atoms, and the methyl group at tin and the iodine atom in cis position. At higher temperatures a process involving interconversion between these two isomers becomes fast on the NMR time scale.