Sodium bifluoride

Sodium bifluoride
Names
IUPAC name
Sodium bifluoride
Other names
  • Sodium hydrogen fluoride
  • SBF[1]
  • Sodium acid fluoride
Identifiers
CAS Number
  • 1333-83-1 checkY
3D model (JSmol)
  • Interactive image
ChemSpider
  • 35308427
ECHA InfoCard 100.014.190 Edit this at Wikidata
EC Number
  • 215-608-3
PubChem CID
  • 219061
UNII
  • 3W2KK83V5G checkY
UN number 2439
CompTox Dashboard (EPA)
  • DTXSID1037010 Edit this at Wikidata
InChI
  • InChI=1S/F2H.Na/c1-3-2;/q-1;+1
    Key: WKYQUTKZJQOMHI-UHFFFAOYSA-N
  • [H-](F)F.[Na+]
Properties
Chemical formula
Na[HF2]
Molar mass 61.995 g·mol−1
Appearance white solid
Density 2.08 g/cm3
Melting point 160 °C (320 °F; 433 K) (decomposes)
Hazards
GHS labelling:
Pictograms
GHS05: CorrosiveGHS06: Toxic
Danger
Hazard statements
H301, H314
Precautionary statements
P260, P264, P270, P280, P301+P310, P301+P330+P331, P303+P361+P353, P304+P340, P305+P351+P338, P310, P321, P330, P363, P405, P501
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).
Infobox references
Chemical compound

Sodium bifluoride is the inorganic compound with the formula Na[HF2]. It is a salt of sodium cation (Na+) and bifluoride anion ([HF2]). It is a white, water-soluble solid that decomposes upon heating .[2] Sodium bifluoride is non-flammable, hygroscopic, and has a pungent smell.[3] Sodium bifluoride has a number of applications in industry.

Reactions

Sodium bifluoride dissociates to hydrofluoric acid and sodium fluoride:

Na[HF2] ⇌ HF + NaF

The reverse of this reaction is employed to remove HF from elemental fluorine (F2) produced by electrolysis.[4] This equilibrium is manifested when the salt is dissolved and when the solid is heated. Characteristic of other bifluorides, it reacts with acids to give HF. Illustrative is its reaction with bisulfate to form sodium sulfate and hydrogen fluoride.

Strong bases deprotonate bifluoride. For example, calcium hydroxide gives calcium fluoride.[5]

Production

Sodium bifluoride is produced by neutralizing waste hydrogen fluoride, which results from the production of superphosphate fertilizers. Typical bases are sodium carbonate and sodium hydroxide. The process occurs in two steps, illustrated with the hydroxide:[4]

HF + NaOH → NaF + H2O
HF + NaF → Na[HF2]

Sodium bifluoride reacts with water or moist skin to produce hydrofluoric acid. It also gives off hydrofluoric acid and hydrogen gas when it is heated to a gaseous state. The chemical can decompose upon contact with strong acids, strong bases, metal, water, or glass.[3] Sodium bifluoride also engages in violent reactions with chromyl chloride, nitric acid, red phosphorus, sodium peroxide, diethyl sulfoxide, and diethylzinc.[6]

Applications

The main role of sodium bifluoride is as a precursor to sodium fluoride, millions of tons of which are produced annually.[4]

Cleaning agents and laundry sours

The compound also has applications in cleaning, capitalizing on the affinity of fluoride for iron and silicon oxides. For example, formulations of sodium bifluoride are used for cleaning brick, stone, ceramics, and masonry. It is also used to etch glass.[3] Another application of sodium bifluoride is in the chemical industry.[7] Other applications of the compound involve the galvanization of baths and pest control.[8] Sodium bifluoride's biological applications include the preservation of zoological and anatomical samples.[9]

Other applications of sodium bifluoride include as laundry sours.[4]

Other uses

Sodium bifluoride has a role in the process that is used to plate metal cans.

Sodium bifluoride also aids in the precipitation of calcium ions during the process of nickel electroplating. The compound also aids in increasing the corrosion of resistance of some magnesium alloys.[10]

Precautions

Sodium bifluoride is corrosive and an irritant upon contact with skin and can cause blistering and inflammation. It is extremely dangerous to ingest. If the compound is exposed to the eyes, blindness and corneal damage can result. Ingestion of sodium bifluoride dust can cause burning, coughing, and sneezing, as a result of irritating the gastrointestinal and respiratory tracts. Exposure of the compound to the eyes can cause redness, itching, and watering. In severe cases, exposure to sodium bifluoride can result in death.[11] It can take between 0 and 24 hours for the effects of sodium bifluoride poisoning to be noticeable.[3]

Exposure to sodium bifluoride repeatedly or over a long time can result in fluorosis. Sodium bifluoride is not known to be carcinogenic.[3]

Biological and environmental role

Sodium bifluoride does not bioaccumulate. It typically only remains in the environment for several days.[3]

References

  1. ^ Product Safety Summary (PDF), retrieved June 17, 2013
  2. ^ Perry, Dale L.; Handbook of Inorganic Compounds; CRC Press (2011); page 381; [1]
  3. ^ a b c d e f Product Safety Data Sheet (PDF), retrieved June 17, 2013
  4. ^ a b c d Aigueperse, Jean; Mollard, Paul; Devilliers, Didier; Chemla, Marius; Faron, Robert; Romano, Renée; Cuer, Jean Pierre (2005), "Fluorine Compounds, Inorganic", in Ullmann (ed.), Encyclopedia of Industrial Chemistry, Weinheim: Wiley-VCH, doi:10.1002/14356007.a11_307
  5. ^ Sodium Bifluoride NaHF2, retrieved June 28, 2013
  6. ^ Richard P. Pohanish; Stanley A. Greene (August 25, 2009), Wiley Guide to Chemical Incompatibilities, John Wiley & Sons, ISBN 9780470523308, retrieved June 29, 2013
  7. ^ http://www.solvaychemicals.us/SiteCollectionDocuments/sds/P19043-USA.pdf[permanent dead link]
  8. ^ Sodium Bifluoride, October 14, 2010, retrieved June 26, 2013
  9. ^ Sodium Bifluorite, Solid, 2012, retrieved June 26, 2013
  10. ^ Alain Tressaud, ed. (April 9, 2010), Functionalized Inorganic Fluorides: Synthesis, Characterization and Properties of Nanostructured Solids, John Wiley & Sons, ISBN 9780470660751, retrieved July 1, 2013
  11. ^ Material Safety Data Sheet Sodium bifluoride MSDS, October 9, 2005, retrieved June 13, 2013
  • v
  • t
  • e
  • v
  • t
  • e
Salts and covalent derivatives of the fluoride ion
HF ?HeF2
LiF BeF2 BF
BF3
B2F4
+BO3
CF4
CxFy
+CO3
NF3
FN3
N2F2
NF
N2F4
NF2
?NF5
OF2
O2F2
OF
O3F2
O4F2
?OF4
F2 Ne
NaF MgF2 AlF
AlF3
SiF4 P2F4
PF3
PF5
S2F2
SF2
S2F4
SF3
SF4
S2F10
SF6
+SO4
ClF
ClF3
ClF5
?ArF2
?ArF4
KF CaF
CaF2
ScF3 TiF2
TiF3
TiF4
VF2
VF3
VF4
VF5
CrF2
CrF3
CrF4
CrF5
?CrF6
MnF2
MnF3
MnF4
?MnF5
FeF2
FeF3
FeF4
CoF2
CoF3
CoF4
NiF2
NiF3
NiF4
CuF
CuF2
?CuF3
ZnF2 GaF2
GaF3
GeF2
GeF4
AsF3
AsF5
Se2F2
SeF4
SeF6
+SeO3
BrF
BrF3
BrF5
KrF2
?KrF4
?KrF6
RbF SrF
SrF2
YF3 ZrF2
ZrF3
ZrF4
NbF4
NbF5
MoF4
MoF5
MoF6
TcF4
TcF
5

TcF6
RuF3
RuF
4

RuF5
RuF6
RhF3
RhF4
RhF5
RhF6
PdF2
Pd[PdF6]
PdF4
?PdF6
Ag2F
AgF
AgF2
AgF3
CdF2 InF
InF3
SnF2
SnF4
SbF3
SbF5
TeF4
?Te2F10
TeF6
+TeO3
IF
IF3
IF5
IF7
+IO3
XeF2
XeF4
XeF6
?XeF8
CsF BaF2   LuF3 HfF4 TaF5 WF4
WF5
WF6
ReF4
ReF5
ReF6
ReF7
OsF4
OsF5
OsF6
?OsF
7

?OsF
8
IrF2
IrF3
IrF4
IrF5
IrF6
PtF2
Pt[PtF6]
PtF4
PtF5
PtF6
AuF
AuF3
Au2F10
?AuF6
AuF5•F2
Hg2F2
HgF2
?HgF4
TlF
TlF3
PbF2
PbF4
BiF3
BiF5
?PoF2
PoF4
PoF6
AtF
?AtF3
?AtF5
RnF2
?RnF
4

?RnF
6
FrF RaF2   LrF3 Rf Db Sg Bh Hs Mt Ds Rg Cn Nh Fl Mc Lv Ts Og
LaF3 CeF3
CeF4
PrF3
PrF4
NdF2
NdF3
NdF4
PmF3 SmF2
SmF3
EuF2
EuF3
GdF3 TbF3
TbF4
DyF2
DyF3
DyF4
HoF3 ErF3 TmF2
TmF3
YbF2
YbF3
AcF3 ThF3
ThF4
PaF4
PaF5
UF3
UF4
UF5
UF6
NpF3
NpF4
NpF5
NpF6
PuF3
PuF4
PuF5
PuF6
AmF2
AmF3
AmF4
?AmF6
CmF3
CmF4
 ?CmF6
BkF3
BkF
4
CfF3
CfF4
EsF3
EsF4
?EsF6
Fm Md No
PF6, AsF6, SbF6 compounds
  • AgPF6
  • KAsF6
  • LiAsF6
  • NaAsF6
  • HPF6
  • HSbF6
  • NH4PF6
  • LiSbF6
  • KPF6
  • KSbF6
  • LiPF6
  • NaPF6
  • NaSbF6
  • TlPF6
AlF6 compounds
  • (NH4)3[AlF6]
  • Cs2AlF5
  • Li3AlF6
  • K3AlF6
  • Na3AlF6
chlorides, bromides, iodides
and pseudohalogenides
SiF62-, GeF62- compounds
  • BaSiF6
  • BaGeF6
  • (NH4)2SiF6
  • Na2[SiF6]
  • K2[SiF6]
  • Li2GeF6
  • Li2SiF6
Oxyfluorides
  • BrOF3
  • BrO2F
  • BrO3F
  • LaOF
  • ThOF2
  • VOF
    3
  • TcO
    3
    F
  • WOF
    4
  • YOF
  • ClOF3
  • ClO2F3
Organofluorides
  • CBrF3
  • CBr2F2
  • CBr3F
  • CClF3
  • CCl2F2
  • CCl3F
  • CF2O
  • CF3I
  • CHF3
  • CH2F2
  • CH3F
  • C2Cl3F3
  • C2H3F
  • C6H5F
  • C7H5F3
  • C15F33N
  • C3H5F
  • C6H11F
with transition metal,
lanthanide, actinide, ammonium
  • VOF3
  • CrOF4
  • CrF2O2
  • NH4F
  • (NH4)3CrF6
  • (NH4)3GaF6
  • (NH4)2GeF6
  • (NH4)3FeF6
  • (NH4)3InF6
  • NH4NbF6
  • (NH4)2SnF6
  • NH4TaF6
  • (NH4)3VF6
  • (NH4)2ZrF6
  • CsXeF7
  • Li2SnF6
  • Li2TiF6
  • LiWF6
  • Li2ZrF6
  • K2TiF6
  • Rb2TiF6
  • Na2TiF6
  • Na2ZrF6
  • K2NbF7
  • K2TaF7
  • K2ZrF6
  • UO2F2
nitric acids
bifluorides
  • KHF2
  • NaHF2
  • NH4HF2
thionyl, phosphoryl,
and iodosyl
  • F2OS
  • F3OP
  • PSF3
  • IOF3
  • IO3F
  • IOF5
  • IO2F
  • IO2F3
  • v
  • t
  • e
Inorganic
Halides
Chalcogenides
Pnictogenides
  • Na3N
  • NaN3
  • NaNH2
  • Na3P
  • Na3As
Oxyhalides
  • NaClO
  • NaClO2
  • NaClO3
  • NaClO4
  • NaBrO
  • NaBrO2
  • NaBrO3
  • NaBrO4
  • NaIO3
  • NaIO4
Oxychalcogenides
  • Na2SO3
  • Na2SO4
  • NaHSO3
  • NaHSO4
  • Na2S2O3
  • Na2S2O4
  • Na2S2O5
  • Na2S2O6
  • Na2S2O7
  • Na2S2O8
  • Na2SeO3
  • Na2SeO4
  • NaHSeO3
  • Na2TeO3
Oxypnictogenides
  • NaNO2
  • NaNO3
  • Na2N2O2
  • NaH2PO4
  • NaPO2H2
  • Na2HPO3
  • Na2PO3F
  • Na3PS2O2
  • Na3PO4
  • Na5P3O10
  • Na4P2O7
  • Na2H2P2O7
  • Na3AsO3
  • Na3AsO4
  • Na2HAsO4
  • NaH2AsO4
  • NaSbO3
Others
  • NaAlH4
  • NaAlO2
  • Na3AlF6
  • NaAl(SO4)2
  • NaAuCl4
  • NaSbF6
  • NaAsF6
  • Na2TiF6
  • NaBH4
  • NaBH3(CN)
  • NaBO2
  • Na2B4O7
  • Na2B2O9
  • Na2B8O13
  • NaBiO3
  • NaCN
  • NaCNO
  • NaCoO2
  • NaH
  • NaHCO3
  • Na4XeO6
  • NaHXeO4
  • NaMnO4
  • NaOCN
  • NaReO4
  • NaSCN
  • NaTcO3
  • NaTcO4
  • NaVO3
  • Na2CO3
  • Na2C2O4
  • Na2C3S5
  • Na2CrO4
  • Na2Cr2O7
  • Na2Cr3O10
  • Na2GeO3
  • Na2He
  • Na2[Fe(CO)4]
  • Na2MnO4
  • Na2MoO4
  • Na3IrCl6
  • Na2PtCl6
  • Na2O(UO3)2
  • Na2S4O6
  • Na2SiO3
  • Na2TiO3
  • Na2U2O7
  • Na2WO4
  • Na2Zn(OH)4
  • Na3VO4
  • Na6V10O28
  • Na4Fe(CN)6
  • Na3Fe(CN)6
  • Na3Fe(C2O4)3
  • Na4SiO4
  • Na2SiF6
  • Na3[Co(NO2)6]
  • NaNSi2(CH3)6
  • Na2PdCl4
Organic
  • CH3ONa
  • C2H5ONa
  • HCOONa
  • C2H5COONa
  • C3H7COONa
  • Na2C4H4O6
  • C4H5NaO6
  • NaCH3COO
  • NaC6H5CO2
  • NaC6H4(OH)CO2
  • NaC12H23O2
  • NaC10H8
  • Na2[Fe[CN5]NO]
  • C6H16AlNaO4
  • NaC6H7O6
  • C5H8NO4Na
  • C6H5Na
  • C4H9Na
  • NaC5H5
  • C15H31COONa
  • C17H33COONa
  • C18H35O2Na
  • C164H256O68S2Na2
  • v
  • t
  • e
  • H3AsO3
  • H3AsO4
  • HArF
  • HAt
  • HSO3F
  • H[BF4]
  • HBr
  • HBrO
  • HBrO2
  • HBrO3
  • HBrO4
  • HCl
  • HClO
  • HClO2
  • HClO3
  • HClO4
  • HCN
  • HCNO
  • H2CrO4/H2Cr2O7
  • H2CO3
  • H2CS3
  • HF
  • HFO
  • HI
  • HIO
  • HIO2
  • HIO3
  • HIO4
  • HMnO4
  • H2MnO4
  • H2MoO4
  • HNC
  • NaHCO3
  • HNCO
  • HNO
  • HNO2
  • HNO3
  • H2N2O2
  • HNO5S
  • H3NSO3
  • H2O
  • H2O2
  • H2O3
  • H2O4
  • H2O5
  • H3PO2
  • H3PO3
  • H3PO4
  • H4P2O7
  • H5P3O10
  • H2[PtCl6]
  • H2S
  • H2S2
  • H2Se
  • H2SeO3
  • H2SeO4
  • H4SiO4
  • H2[SiF6]
  • HSCN
  • HNCS
  • H2SO3
  • H2SO4
  • H2SO5
  • H2S2O3
  • H3O
  • H2S2O6
  • H2S2O7
  • H2S2O8
  • CF3SO3H
  • H2Te
  • H2TeO3
  • H6TeO6
  • H4TiO4
  • H2Po
  • H[Co(CO)4]