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Disulfur dinitride
Space-filling model of disulfur dinitride
Names
Preferred IUPAC name
Disulfur dinitride
Systematic IUPAC name
4,3,2,4-Dithiadiazete
Other names
Cyclic sulfur(II,IV) nitride
1,3-dithia-2,4-diazacyclobutan-2,4-diyl
Identifiers
3D model (JSmol)
ChEBI
ChemSpider
  • InChI=1S/N2S2/c1-3-2-4-1
    Key: HGFWWXXKPBDJAH-UHFFFAOYSA-N
  • S1N=S=N1
Properties
S2N2
Molar mass 92.1444 g/mol
Appearance colourless crystals
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).

Disulfur dinitride is the chemical compound with the formula S2N2.

Preparation and reactions[edit]

Passing gaseous S4N4 over silver metal wool at 250–300 °C at low pressure (1mm Hg) yields cyclic S2N2. The silver reacts with the sulfur produced by the thermal decomposition of the S4N4 to form Ag2S, and the resulting Ag2S catalyzes the conversion of the remaining S4N4 into the four-membered ring S2N2,[1]

S4N4 + 8 Ag → 4 Ag2S + 2 N2
S4N4 → 2 S2N2

An alternative uses the less explosive S4N3Cl.[2][clarification needed]

S2N2 decomposes explosively above 30°C, and is shock sensitive.[1] It readily sublimes, and is soluble in diethyl ether. Traces of water cause it to polymerize into S4N4.[2] In the solid state it spontaneously polymerizes forming (SN)n.[1] It forms adducts with Lewis acids via a nitrogen atom, e.g. S2N2·BCl3, S2N2·2AlCl3, S2N2·SbCl5, S2N2·2SbCl5.[2][3]

Structure and bonding[edit]

The S2N2 molecule is a four-membered ring, with alternating S and N atoms. One S atom has valence 4 and the other S atom has valence 2. Both nitrogen atoms has valence 3. The molecule is almost square and planar. The S–N bond lengths are 165.1pm and 165.7pm and the bond angles are very close to 90°.[1] The S2N2 molecule is isoelectronic with the cyclic S2+4 dication and has 6π electrons.[2] The bonding has been investigated using a spin-coupled valence bond method [4] and is described as having four framework sigma bonds, with the N atoms bearing a high negative charge and the S atoms a corresponding positive charge. Two π electrons from the sulfur atoms are coupled across the ring making the molecule overall a singlet diradical.

See also[edit]

References[edit]

  1. ^ a b c d Greenwood, Norman N.; Earnshaw, Alan (1997). Chemistry of the Elements (2nd ed.). Butterworth-Heinemann. ISBN 978-0-08-037941-8.
  2. ^ a b c d Wiberg, E.; Holleman, A. F. (2001). Inorganic Chemistry. Elsevier. ISBN 0-12-352651-5.
  3. ^ Patton R. L.; Raymond, K. N. (1969). "The Crystal and Molecular Structure of S2N2(SbCl5)2". Inorganic Chemistry. 8 (11): 2426–2431. doi:10.1021/ic50081a035.
  4. ^ Gerratt, J.; McNicholas, S. J.; Karadakov, P. B.; Sironi, M.; Raimondi, M.; Cooper, D. L. (1996). "The Extraordinary Electronic Structure of N2S2". Journal of the American Chemical Society. 118 (27): 6472–6476. doi:10.1021/ja953994f.

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