Barium iodide

Barium iodide[1]
Names
IUPAC name
Barium iodide
Other names
Barium iodide, anhydrous
Identifiers
CAS Number
  • 13718-50-8 (anhydrous) checkY
  • 7787-33-9 (dihydrate) ☒N
  • 13477-15-1 (hexahydrate) ☒N
3D model (JSmol)
  • Interactive image
  • Interactive image
ChemSpider
  • 75507 checkY
ECHA InfoCard 100.033.873 Edit this at Wikidata
EC Number
  • 237-276-9
PubChem CID
  • 83684
UNII
  • WKC4T7680A checkY
CompTox Dashboard (EPA)
  • DTXSID2065597 Edit this at Wikidata
InChI
  • InChI=1S/Ba.2HI/h;2*1H/q+2;;/p-2 checkY
    Key: SGUXGJPBTNFBAD-UHFFFAOYSA-L checkY
  • InChI=1/Ba.2HI/h;2*1H/q+2;;/p-2
    Key: SGUXGJPBTNFBAD-NUQVWONBAS
  • I[Ba]I
  • [Ba+2].[I-].[I-]
Properties
Chemical formula
BaI2 (anhydrous)
BaI2·2H2O (dihydrate)
Molar mass 391.136 g/mol (anhydrous)
427.167 g/mol (dihydrate)
Appearance White orthorhombic crystals (anhydrous) colorless crystals (dihydrate)
Odor odorless
Density 5.15 g/cm3 (anhydrous)
4.916 g/cm3 (dihydrate)
Melting point 711 °C (1,312 °F; 984 K) (anhydrous)
decomposes at 740 °C (dihydrate)
Solubility in water
166.7 g/100 mL (0 °C)
221 g/100 mL (20 °C)
246.6 g/100 mL (70 °C)
Solubility soluble in ethanol, acetone
Magnetic susceptibility (χ)
-124.0·10−6 cm3/mol
Structure
PbCl2-type (Orthorhombic oP12)
Pnma (No. 62)
Thermochemistry
Std enthalpy of
formation fH298)
-602.1 kJ·mol−1
Hazards
Occupational safety and health (OHS/OSH):
Main hazards
toxic
Related compounds
Other anions
barium fluoride
barium chloride
barium bromide
Other cations
beryllium iodide
magnesium iodide
calcium iodide
strontium iodide
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
Chemical compound

Barium iodide is an inorganic compound with the formula BaI2. The compound exists as an anhydrous and a hydrate (BaI2(H2O)2), both of which are white solids. When heated, hydrated barium iodide converts to the anhydrous salt. The hydrated form is freely soluble in water, ethanol, and acetone.

Structure

The structure of the anhydrous form resembles that of lead(II) chloride with each Ba center bound to nine iodide ligands[2] and has a crystalline packing structure that is quite similar to BaCl2.[3]

Reactions

Anhydrous BaI2 can be prepared by treating Ba metal with 1,2-diiodoethane in ether.[4]

BaI2 reacts with alkyl potassium compounds to form organobarium compounds.[5]

BaI2 can be reduced with lithium biphenyl, to give a highly active form of barium metal.[6]

Safety

Like other soluble salts of barium, barium iodide is toxic.

References

  1. ^ Lide, David R. (1998), Handbook of Chemistry and Physics (87 ed.), Boca Raton, FL: CRC Press, pp. 4–44, ISBN 0-8493-0594-2
  2. ^ Wells, A.F. (1984) Structural Inorganic Chemistry, Oxford: Clarendon Press. ISBN 0-19-855370-6.
  3. ^ Brackett, E. B.; Brackett, T. E.; Sass, R. L.; The Crystal Structures of Barium Chloride, Barium Bromide, and Barium Iodide. J. Phys. Chem., 1963, volume 67, 2132 – 2135
  4. ^ Duval, E.; Zoltobroda, G.; Langlois, Y.; A new preparation of BaI2: application to (Z)-enol ether synthesis. Tetrahedron Letters, 2000, 41, 337-339
  5. ^ Walter, M. D.; Wolmershauser, G.; Sitzmann, H.; Calcium, Strontium, Barium, and Ytterbium Complexes with Cyclooctatetraenyl or Cyclononatetraenyl Ligands. J. Am. Chem. Soc., 2005, 127 (49), 17494 – 17503.
  6. ^ Yanagisawa, A.; Habaue, S.; Yasue, K.; Yamamoto, H.; Allylbarium Reagents: Unprecedented Regio- and Stereoselective Allylation Reactions of Carbonyl Compounds. J. Am. Chem. Soc.1994, 116,6130-6141
  • v
  • t
  • e
  • BaB6
  • Ba(BO2)2
  • BaBr2
  • Ba(BrO3)2
  • Ba(CH3CO2)2
  • Ba(C5H7O2)2
  • Ba(ClO)2
  • BaC2
  • BaCO3
  • BaC2O4
  • Ba(ClO3)2
  • BaClF
  • Ba(ClO4)2
  • Ba(CN)2
  • BaCl2
  • BaCrO4
  • BaF2
  • BaFeO4
  • BaFe2O4
  • BaH2
  • BaI2
  • Ba(IO3)2
  • BaMnO4
  • Ba(MnO4)2
  • Ba(N3)2
  • Ba(NO2)2
  • Ba(NO3)2
  • BaO
  • BaO2
  • Ba(OH)2
  • Ba(PO3)2
  • BaS
  • BaSe
  • BaSeO4
  • Ba(SCN)2
  • BaSO3
  • BaSO4
  • BaRuO3
  • BaSnO3
  • BaTiO3
  • Ba2TiO4
  • BaWO4
  • BaZnGa
  • Sr2Ba1-xNb2O6
  • YBa2Cu3O7-x
  • BaGeF6
  • BaSiF6
  • v
  • t
  • e
Salts and covalent derivatives of the iodide ion
HI
+H
He
LiI BeI2 BI3
+BO3
CI4
+C
NI3
NH4I
+N
I2O4
I2O5
I4O9
IF
IF3
IF5
IF7
Ne
NaI MgI2 AlI
AlI3
SiI4 PI3
P2I4
+P
PI5
S2I2 ICl
ICl3
Ar
KI CaI2 ScI3 TiI2
TiI3
TiI4
VI2
VI3
CrI2
CrI3
MnI2 FeI2
FeI3
CoI2 NiI2
-Ni
CuI ZnI2 GaI
GaI3
GeI2
GeI4
+Ge
AsI3
As2I4
+As
Se IBr
IBr3
Kr
RbI
RbI3
SrI2 YI3 ZrI2
ZrI3
ZrI4
NbI4
NbI5
MoI2
MoI3
TcI3 RuI3 RhI3 PdI2 AgI CdI2 InI
InI3
SnI2
SnI4
SbI3
+Sb
TeI4
+Te
I
I
3
Xe
CsI
CsI3
BaI2   LuI3 HfI3
HfI4
TaI4
TaI5
WI2
WI3
WI4
ReI3
ReI
4
OsI
OsI2
OsI3
IrI3
IrI
4
PtI2
PtI4
AuI
AuI3
Hg2I2
HgI2
TlI
TlI3
PbI2 BiI3 PoI2
PoI4
AtI Rn
Fr RaI2   Lr Rf Db Sg Bh Hs Mt Ds Rg Cn Nh Fl Mc Lv Ts Og
LaI2
LaI3
CeI2
CeI3
PrI2
PrI3
NdI2
NdI3
PmI3 SmI2
SmI3
EuI2
EuI3
GdI2
GdI3
TbI3 DyI2
DyI
3
HoI3 ErI3 TmI2
TmI3
YbI2
YbI3
AcI3 ThI2
ThI3
ThI4
PaI4
PaI5
UI3
UI4
NpI3 PuI3 AmI2
AmI3
CmI3 BkI
3
CfI
2

CfI
3
EsI2
EsI3
Fm Md No