Ammonium fluoride

Ammonium fluoride
The ammonium cation
The ammonium cation
The fluoride anion
The fluoride anion
ball-and-stick model of an ammonium cation (left) and a fluoride anion (right)
Solid sample of ammonium fluoride
Names
IUPAC name
Ammonium fluoride
Other names
Neutral ammonium fluoride
Identifiers
CAS Number
  • 12125-01-8 checkY
3D model (JSmol)
  • Interactive image
ChEBI
  • CHEBI:66871
ChemSpider
  • 23806 checkY
ECHA InfoCard 100.031.975 Edit this at Wikidata
EC Number
  • 235-185-9
PubChem CID
  • 25516
RTECS number
  • BQ6300000
UNII
  • 4QT928IM0A
UN number 2505
CompTox Dashboard (EPA)
  • DTXSID6050463 Edit this at Wikidata
InChI
  • InChI=1S/FH.H3N/h1H;1H3 checkY
    Key: LDDQLRUQCUTJBB-UHFFFAOYSA-N checkY
  • InChI=1/FH.H3N/h1H;1H3
    Key: LDDQLRUQCUTJBB-UHFFFAOYAM
  • [F-].[NH4+]
Properties
Chemical formula
NH4F
Molar mass 37.037 g/mol
Appearance White crystalline solid
hygroscopic
Density 1.009 g/cm3
Melting point 100 °C (212 °F; 373 K) (decomposes)
Solubility in water
83.5 g/100 ml (25 °C) [1]
Solubility slightly soluble in alcohol, insoluble in liquid ammonia
Magnetic susceptibility (χ)
−23.0×10−6 cm3/mol
Structure
Wurtzite structure (hexagonal)
Hazards
GHS labelling:[2]
GHS05: Corrosive GHS06: Toxic
Danger
H301, H311, H314, H330, H331
P260, P261, P264, P270, P271, P280, P284, P301+P310, P301+P330+P331, P302+P352, P303+P361+P353, P304+P340, P305+P351+P338, P310, P311, P312, P320, P321, P322, P330, P361, P363, P403+P233, P405, P501
NFPA 704 (fire diamond)
NFPA 704 four-colored diamondHealth 3: Short exposure could cause serious temporary or residual injury. E.g. chlorine gasFlammability 0: Will not burn. E.g. waterInstability 0: Normally stable, even under fire exposure conditions, and is not reactive with water. E.g. liquid nitrogenSpecial hazards (white): no code
3
0
0
Flash point Non-flammable
Safety data sheet (SDS) ICSC 1223
Related compounds
Other anions
Ammonium chloride
Ammonium bromide
Ammonium iodide
Other cations
Sodium fluoride
Potassium fluoride
Related compounds
Ammonium bifluoride
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

Ammonium fluoride is the inorganic compound with the formula NH4F. It crystallizes as small colourless prisms, having a sharp saline taste, and is highly soluble in water. Like all fluoride salts, it is moderately toxic in both acute and chronic overdose.[3]

Crystal structure

Ammonium fluoride adopts the wurtzite crystal structure, in which both the ammonium cations and the fluoride anions are stacked in ABABAB... layers, each being tetrahedrally surrounded by four of the other. There are N−H···F hydrogen bonds between the anions and cations.[4] This structure is very similar to ice, and ammonium fluoride is the only substance which can form mixed crystals with water.[5]

Reactions

On passing hydrogen fluoride gas (in excess) through the salt, ammonium fluoride absorbs the gas to form the addition compound ammonium bifluoride. The reaction occurring is:

NH4F + HF → NH4HF2

It sublimes when heated—a property common among ammonium salts. In the sublimation, the salt decomposes to ammonia and hydrogen fluoride, and the two gases can recombine to give ammonium fluoride, i.e. the reaction is reversible:

[NH4]F ⇌ NH3 + HF

Uses

This substance is commonly called "commercial ammonium fluoride". The word "neutral" is sometimes added to "ammonium fluoride" to represent the neutral salt [NH4]F as opposed to the "acid salt" (NH4HF2). The acid salt is usually used in preference to the neutral salt in the etching of glass and related silicates. This property is shared among all soluble fluorides. For this reason it cannot be handled in glass test tubes or apparatus during laboratory work.

It is also used for preserving wood, as a mothproofing agent, in printing and dyeing textiles, and as an antiseptic in breweries.[6]

References

  1. ^ "Ammonium Fluoride". pubchem.ncbi.nlm.nih.gov.
  2. ^ "Ammonium Fluoride". pubchem.ncbi.nlm.nih.gov.
  3. ^ "Fluoride Toxicity - an overview | ScienceDirect Topics". www.sciencedirect.com. Retrieved 2020-12-16.
  4. ^ A. F. Wells, Structural Inorganic Chemistry, 5th ed., Oxford University Press, Oxford, UK, 1984.
  5. ^ Brill, R.; Zaromb, S. (1954). "Mixed Crystals of Ice and Ammonium Fluoride". Nature. 173 (4398): 316–317. Bibcode:1954Natur.173..316B. doi:10.1038/173316a0. S2CID 4146351.
  6. ^ Aigueperse, Jean; Paul Mollard; Didier Devilliers; Marius Chemla; Robert Faron; Renée Romano; Jean Pierre Cuer (2005). "Fluorine Compounds, Inorganic". In Ullmann (ed.). Encyclopedia of Industrial Chemistry. Weinheim: Wiley-VCH. doi:10.1002/14356007.a11_307. ISBN 3-527-30673-0.
  • v
  • t
  • e
Ammonium salts
Inorganic salts
monatomic anions
  • NH4F
  • (NH4)2S
  • NH4Cl
  • (NH4)2Se
  • NH4Br
  • NH4I
oxyanions
  • NH4NO2
  • NH4NO3
  • (NH4)2CO3
  • (NH4)4UO2(CO3)2
  • (NH4)HCO3
  • NH4OCN
  • (NH4)3PO4
  • (NH4)2HPO4
  • (NH4)H2PO4
  • (NH4PO4)n(OH)2
  • NH4NaHPO4
  • (NH4)2SO3
  • (NH4)2SO4
  • (NH4)Al(SO4)2·12H2O
  • (NH4)2Fe(SO4)2·6H2O
  • NH4Fe(SO4)2·12H2O
  • NH4SO3NH2
  • (NH4)HSO4
  • (NH4)2S2O8
  • (NH4)2S2O3
  • NH4ClO3
  • NH4ClO4
  • NH4VO3
  • (NH4)2CrO4
  • (NH4)2Cr2O7
  • NH4MnO4
  • (NH4)3AsO4
  • (NH4)2MoO4
  • (NH4)6Mo7O24
  • (NH4)3Mo12PO40
  • NH4IO3
  • (NH4)2Ce(NO3)6
  • (NH4)8Ce2(SO4)8·4H2O
  • (NH4)10H2W12O42·4H2O
  • NH4ReO4
other anions
  • NH4BF4
  • NH4N3
  • NH4CN
  • (NH4)HF2
  • (NH4)3AlF6
  • (NH4)SiF6
  • (NH4)HS
  • NH4SCN
  • (NH4)2ZnCl4
  • (NH4)2MoS4
  • NH4I3
  • (NH4)2TeCl6
  • (NH4)2IrCl6
  • (NH4)2PtCl6
Organic salts
  • v
  • t
  • e
HF He
LiF BeF2 BF
BF3
B2F4
CF4
CxFy
NF3
N2F4
OF
OF2
O2F2
O2F
F Ne
NaF MgF2 AlF
AlF3
SiF4 P2F4
PF3
PF5
S2F2
SF2
S2F4
SF4
S2F10
SF6
ClF
ClF3
ClF5
HArF
ArF2
KF CaF2 ScF3 TiF3
TiF4
VF2
VF3
VF4
VF5
CrF2
CrF3
CrF4
CrF5
CrF6
MnF2
MnF3
MnF4
FeF2
FeF3
CoF2
CoF3
NiF2
NiF3
CuF
CuF2
ZnF2 GaF3 GeF4 AsF3
AsF5
SeF4
SeF6
BrF
BrF3
BrF5
KrF2
KrF4
KrF6
RbF SrF2 YF3 ZrF4 NbF4
NbF5
MoF4
MoF5
MoF6
TcF6 RuF3
RuF4
RuF5
RuF6
RhF3
RhF5
RhF6
PdF2
Pd[PdF6]
PdF4
PdF6
AgF
AgF2
AgF3
Ag2F
CdF2 InF3 SnF2
SnF4
SbF3
SbF5
TeF4
TeF6
IF
IF3
IF5
IF7
XeF2
XeF4
XeF6
XeF8
CsF BaF2 * LuF3 HfF4 TaF5 WF4
WF6
ReF6
ReF7
OsF4
OsF5
OsF6
OsF
7

OsF8
IrF3
IrF5
IrF6
PtF2
Pt[PtF6]
PtF4
PtF5
PtF6
AuF
AuF3
Au2F10
AuF5·F2
HgF2
Hg2F2
HgF4
TlF
TlF3
PbF2
PbF4
BiF3
BiF5
PoF4
PoF6
At RnF2
RnF6
Fr RaF2 ** Lr Rf Db Sg Bh Hs Mt Ds Rg Cn Nh Fl Mc Lv Ts Og
* LaF3 CeF3
CeF4
PrF3
PrF4
NdF3 PmF3 SmF2
SmF3
EuF2
EuF3
GdF3 TbF3
TbF4
DyF3 HoF3 ErF3 TmF2
TmF3
YbF2
YbF3
** AcF3 ThF4 PaF4
PaF5
UF3
UF4
UF5
UF6
NpF3
NpF4
NpF5
NpF6
PuF3
PuF4
PuF5
PuF6
AmF3
AmF4
AmF6
CmF3 Bk Cf Es Fm Md No
PF6, AsF6, SbF6 compounds
  • AgPF6
  • KAsF6
  • LiAsF6
  • NaAsF6
  • HPF6
  • HSbF6
  • NH4PF6
  • KPF6
  • KSbF6
  • LiPF6
  • NaPF6
  • NaSbF6
  • TlPF6
AlF6 compounds
  • Cs2AlF5
  • K3AlF6
  • Na3AlF6
chlorides, bromides, iodides
and pseudohalogenides
SiF62-, GeF62- compounds
  • BaSiF6
  • BaGeF6
  • (NH4)2SiF6
  • Na2[SiF6]
  • K2[SiF6]
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)2ZrF6
  • CsXeF7
  • Li2TiF6
  • 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
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