MnF 3 is monoclinic with a=8.904±0.003, b--5-037±0.002, c---13-448+0.005 A; fl=92.74+0.04 °.The structure is pseudo-rhombohedral and has atoms in the following positions of space group C2 /c-C~h : 4Mn at (a): 8Mn at (f~), with x 1 --=~, Yl=½, z~----½; 4F at (e), with ye=0"617; 8Fat (f2), with x~ = 0.310, y~. ----0.714, z2 = 0"244; 8F at (f3), with x 3 ----0-167, Y3 = 0-117, z a = 0.583; 8F at (f4), with x 4 = 0.477, Ya = 0.214, z 4 ----0.577; 8F at (fh), with xh----0-143, Yh----0.214, z5----0.911.Since its fluorine-atom packing is mid-way between close-packed hexagonal and an ReO3-type cubic close-packing, MnF 3 is classified as a VF3-type transition-element trifluoride. The lower symmetry of the structure, in comparison with other trifluorides, results from three different Mn-F bond lengths (2.09, 1.91 and 1.79 A) in each MnF, octahedron. Reasons for this unsymmetrical bonding and for its unique occurrence in MnF 3 are offered in terms of crystal-field theory.
The crystal structure of 5-amino-2-thiol-l,3,4-thiadiazole (C2H3NaS2) has been determined by threedimensional Patterson and Fourier methods and refined by block-matrix least-squares calculations.The crystals are monoclinic, space group P21/c with four molecules in a unit cell of dimensions a = 6.167, b= 10.048, c=9-007,~, fl=116.8 °. The final R index is 0.106 for 796 observed reflexions, collected with Cu K0c radiation. The molecule may be regarded as being planar since the deviations of the atoms from the mean plane of the molecule are all less than 0.02/~. Bond lengths indicate that the compound exists in the thione rather than the thiol form. The 1,3,4-thiadiazole ring possesses a fair degree of aromaticity with a localized C(1)=N(1)double bond of length 1.305 (6) ~. Other C-N bond lengths are 1.334 and 1.339 ~ with a mean estimated standard deviation of 0.009 A. The N-N bond length is 1.382 (8) A,. The cyclic C-S distances are 1.746 and 1.748 A and the exocyclic C-S bond length is 1"678 A, the mean e.s.d, of these three bonds is 0.006 ~. Of particular interest is the short S-S intramolecular contact of 3.008 A which is approximately 0.5 A shorter than the sum of the Pauling van der Waals radii. There is a reasonable probability that hydrogen bonds of type N-H. • • S and length 3"32 A exist, joining pairs of molecules across centres of symmetry.
Complex fluorides of the general formula M(I)M(v)F,, where M(I) = Li, Na, K, Rb, Cs, Ag, and M(v) = Ir, Os, involving quinquevalent iridium and osmium have been prepared and characterised. Further, the preparation of complexes of the formula M(I)&(Iv)F,, where M(I) = K, Cs, and M(Iv) = Ir, Os, is also described. Evidence is presented to show that complexes of the types M(I)IrF, and M(I)OSF,, where M(I) = Na, I<, do not exist.HITHERTO the known complex halides of iridium and osmium were the chloride and bromide, and, for osmium only, the iodide. Those of iridium, derived from the sexacovalent element in the ter-and quadri-valent conditions, had the forrnulz M(I)~I~(III)C~, and M(1)$r(1v)C16 respectively ; those of osmium included the isomorphous chloro-osmates M(I),OS(IV)C~, and also a sexavalent series containing the osmyl, Oso,, grouping.Attempts to obtain complex fluorides from the chloroiridates and aqueous hydrogen fluoride were not successful (cf. Sharpe, J., 1950, 3444). Schlesinger and Tapley (J. Amer. Chem. Soc., 1924, 46, 276), however, claim to have prepared K21rF6 and PbIrF, from powdered iridium and potassium plumbifluoride, K3HPbF,. The classic work of Ruff and his collaborators ( [1913][1914][1915][1916][1917][1918][1919][1920][1921][1922][1923][1924][1925][1926][1927][1928][1929][1930], although mainly directed to the making of simple fluorides, e.g., IrF6, IrF,, OsF,, OsF,, and OsF,, included the observations that fluorination of metallic iridium or osmium intimately mixed with an alkali-metal fluoride, yielded white, salt-like substances. No analyses or further information about these compounds was given and the present communication describes a reopening of the subject in which, by using bromine trifluoride as the fluorinating agent, we have been able to prepare new complex fluorides. These compounds are of special interest in that they are the first in which the metals osmium and iridium have been shown to exhibit a valency of five. EXPERIMENTAL Comfilex Fluorides of QuinquevalentIridium-The bromine trifluoride was prepared as previously described (J., 1954, 1197). As the reagent does not react a t room temperature with metallic iridium and only slowly and very incompletely a t its boiling point, a bromide was substituted for the element and proved ideal for the preparations. The iridium bromide was prepared by dissolving good-quality sodium chloroiridate (Found : Ir, 34.1. Calc. for Na2IrC1,,6H,o: Ir, 34.4%) in 10% hydrochloric acid and heating the solution to 70-80" with a slight excess of " AnalaR" ammonium chloride. After 12 hr. the black crystals of ammonium chloroiridate were collected on a fritted-glass filter, well washed under suction with dilute hydrochloric acid, with 50% aqueous alcohol, both cooled to 0", and, finally, with (v), KIrF,, a white solid sparingly soluble in bromine trifluoride and readily freed from bromine (b) Mixture KBr : 1rBr3r5 = 2 : 1 and 3 : 1.KIrF,,KF,0.5BrF3 requires Ir, 40.9% ; equiv., 472).Complex Fluorides of Quadrivalent Iridium.-( 1) Potassium hexafluoroi...
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