Magnesium iodide

Magnesium iodide
Names
IUPAC name
Magnesium iodide
Identifiers
CAS Number
3D model (JSmol)
ChemSpider
ECHA InfoCard 100.030.738
EC Number
  • 233-825-1
PubChem CID
UNII
CompTox Dashboard (EPA)
InChI
  • InChI=1S/2HI.Mg/h2*1H;/q;;+2/p-2 ☒N
    Key: BLQJIBCZHWBKSL-UHFFFAOYSA-L ☒N
  • InChI=1/2HI.Mg/h2*1H;/q;;+2/p-2
    Key: BLQJIBCZHWBKSL-NUQVWONBAV
SMILES
  • I[Mg]I
  • [Mg+2].[I-].[I-]
Properties
Chemical formula
  • MgI2 (anhydrous)
  • MgI2·6H2O (hexahydrate)
  • MgI2·8H2O (octahydrate)[1]
Molar mass
  • 278.1139 g/mol (anhydrous)
  • 386.2005 g/mol (hexahydrate)
  • 422.236 g/mol (octahydrate)
Appearance white crystalline solid
Odor odorless
Density
  • 4.43 g/cm3 (anhydrous solid)
  • 2.353 g/cm3 (hexahydrate solid)
  • 2.098 g/cm3 (octahydrate solid)
Melting point 637 °C (1,179 °F; 910 K) (anhydrous, decomposes)
41 °C (octahydrate, decomposes)
Solubility in water
  • 54.7 g/(100 cm3) (anhydrous, 0 °C)
  • 148 g/(100 cm3) (anhydrous, 18 °C)[2]
  • 81 g/(100 cm3) (octahydrate, 20 °C)
Solubility soluble in ether, alcohol and ammonia
Magnetic susceptibility (χ)
−111.0·10−6 cm3/mol
Structure
Crystal structure
  • Hexagonal (anhydrous)
  • Monoclinic (hexahydrate)
  • Orthorhombic (octahydrate)
Thermochemistry
Heat capacity (C)
74 J/(mol·K)
Std molar
entropy (S298)
134 J/(mol·K)
Std enthalpy of
formation fH298)
−364 kJ/mol
Hazards
GHS labelling:
Pictograms
GHS07: Exclamation mark
Signal word
Warning
Hazard statements
H315, H319
NFPA 704 (fire diamond)
NFPA 704 four-colored diamond
3
1
1
COR
Related compounds
Other anions
Other cations
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).
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Infobox references

Magnesium iodide is an inorganic compound with the chemical formula MgI2. It forms various hydrates MgI2·xH2O. Magnesium iodide is a salt of magnesium and hydrogen iodide. These salts are typical ionic halides, being highly soluble in water.

Uses

Magnesium iodide has few commercial uses, but can be used to prepare compounds for organic synthesis.

Preparation

Magnesium iodide can be prepared from magnesium oxide, magnesium hydroxide, and magnesium carbonate by treatment with hydroiodic acid:[3]

MgO + 2 HI → MgI2 + H2O
Mg(OH)2 + 2 HI → MgI2 + 2 H2O
MgCO3 + 2 HI → MgI2 + CO2 + H2O

Reactions

Magnesium iodide is stable at high heat under a hydrogen atmosphere, but decomposes in air at normal temperatures, turning brown from the release of elemental iodine. When heated in air, it decomposes completely to magnesium oxide.[4]

Another method to prepare MgI2 is mixing powdered elemental iodine and magnesium metal. In order to obtain anhydrous MgI2, the reaction should be conducted in a strictly anhydrous atmosphere; dry-diethyl ether can be used as a solvent.

Usage of magnesium iodide in the Baylis-Hillman reaction tends to give (Z)-vinyl compounds.[5]

Demethylation of certain aromatic methyl ethers can be afforded using magnesium iodide in diethyl ether.[6]

Hydrates

Two hydrates are known, the octahydrate and the nonahydrate, both verified by X-ray crystallography These hydrates feature [Mg(H2O)6]2+ ions.[7]

References

  1. ^ Perry, Dale L.; Phillips, Sidney L. (1995), Handbook of Inorganic Compounds, CRC Press, p. 240, ISBN 0-8493-8671-3, retrieved 2007-12-09
  2. ^ Magnesium Iodide MSDS at AlfaAesar
  3. ^ Patnaik, Pradyot (2003), Handbook of Inorganic Chemicals, McGraw-Hill Professional, pp. 527–528, ISBN 0-07-049439-8, retrieved 2007-12-09
  4. ^ Wilsmore, N. T. M. (1891). "Note on Magnesium Iodide". In James Hector (ed.). Report of the Third Meeting of the Australasian Association for the Advancement of Science. Sydney: The Association. p. 116. Retrieved 2007-12-09.
  5. ^ Tietze, Lutz-Friedjan; Brasche, Gordon; Gericke, Kersten (2006), "Domino Reactions in Organic Synthesis", Chemical Reviews, 96 (1), Wiley-VCH: 115–136, doi:10.1021/cr950027e, ISBN 3-527-29060-5, PMID 11848746, retrieved 2007-12-09{{citation}}: CS1 maint: work parameter with ISBN (link)
  6. ^ Yamaguchi, Seiji; Nedachi, Masahiro; Yokoyama, Hajime; Hirai, Yoshiro (October 1999). "Regioselective demethylation of 2,6-dimethoxybenzaldehydes with magnesium iodide etherate". Tetrahedron Letters. 40 (41): 7363–7365. doi:10.1016/S0040-4039(99)01411-2.
  7. ^ Hennings, Erik; Schmidt, Horst; Voigt, Wolfgang (2013). "Crystal Structures of Hydrates of Simple Inorganic Salts. I. Water-Rich Magnesium Halide Hydrates MgCl2·8H2O, MgCl2·12H2O, MgBr2·6H2O, MgBr2·9H2O, MgI2·8H2O and MgI2·9H2O". Acta Crystallographica Section C Crystal Structure Communications. 69 (11): 1292–1300. doi:10.1107/S0108270113028138. PMID 24192174.