Beryllium Fluoride

Beryllium fluoride is the inorganic compound with the formula Be F2.

This white solid is the principal precursor for the manufacture of beryllium metal. Its structure resembles that of quartz, but BeF2 is highly soluble in water.

Beryllium fluoride
Beryllium Fluoride
Beryllium Fluoride
Beryllium Fluoride
Names
IUPAC name
Beryllium fluoride
Other names
Beryllium difluoride
Difluoroberyllane
Identifiers
3D model (JSmol)
ChEBI
ChemSpider
ECHA InfoCard 100.029.198 Edit this at Wikidata
RTECS number
  • DS2800000
UNII
  • InChI=1S/Be.2FH/h;2*1H/q+2;;/p-2 checkY
    Key: JZKFIPKXQBZXMW-UHFFFAOYSA-L checkY
  • InChI=1/Be.2FH/h;2*1H/q+2;;/p-2
    Key: JZKFIPKXQBZXMW-NUQVWONBAD
  • [Be+2].[F-].[F-]
Properties
BeF2
Molar mass 47.01 g/mol
hygroscopic
Appearance colorless, glassy lumps
Density 1.986 g/cm3
Melting point 554 °C (1,029 °F; 827 K)
Boiling point 1,169 °C (2,136 °F; 1,442 K)
very soluble
Solubility sparingly soluble in alcohol
Structure
Trigonal, α-quartz
P3121 (No. 152), Pearson symbol hP9
a = 473.29 pm, c = 517.88 pm
Linear
Thermochemistry
1.102 J/K or 59 J/mol K
45 J/mol K
-1028.2 kJ/g or -1010 kJ/mol
-941 kJ/mol
Hazards
GHS labelling:
CorrosiveAcute ToxicityReproductive toxicity, target organ toxicity, carcinogen, aspiration hazardEnvironment, aquatic toxicity
Danger
H301, H305, H311, H314, H315, H319, H330, H335, H372, H411
P201, P202, P260, P264, P270, P271, P273, P280, P281, P284, P301+P310, P301+P330+P331, P302+P352, P303+P361+P353, P304+P340, P305+P351+P338, P308+P313, P310, P312, P314, P320, P321, P322, P330, P361, P363, P391, P403+P233, P405, P501
Flash point Non-flammable
Lethal dose or concentration (LD, LC):
90 mg/kg (oral, rat)
100 mg/kg (oral, mouse)
NIOSH (US health exposure limits):
PEL (Permissible)
TWA 0.002 mg/m3
C 0.005 mg/m3 (30 minutes), with a maximum peak of 0.025 mg/m3 (as Be)
REL (Recommended)
Ca C 0.0005 mg/m3 (as Be)
IDLH (Immediate danger)
Ca [4 mg/m3 (as Be)]
Safety data sheet (SDS) InChem MSDS
Related compounds
Other anions
Beryllium chloride
Beryllium bromide
Beryllium iodide
Other cations
Magnesium fluoride
Calcium fluoride
Strontium fluoride
Barium fluoride
Radium fluoride
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).
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Properties

Beryllium fluoride has distinctive optical properties. In the form of fluoroberyllate glass, it has the lowest refractive index for a solid at room temperature of 1.275. Its dispersive power is the lowest for a solid at 0.0093, and the nonlinear coefficient is also the lowest at 2 × 10−14.

Structure and bonding

Beryllium Fluoride 
Structure of gaseous BeF2.

The structure of solid BeF2 resembles that of cristobalite. Be2+ centers are four coordinate and tetrahedral and the fluoride centers are two-coordinate. The Be-F bond lengths are about 1.54 Å. Analogous to SiO2, BeF2 can also adopt a number of related structures. An analogy also exists between BeF2 and AlF3: both adopt extended structures at mild temperature.

Gas and liquid BeF2

Gaseous beryllium fluoride adopts a linear structure, with a Be-F distance of 143 pm. BeF2 reaches a vapor pressure of 10 Pa at 686 °C, 100 Pa at 767 °C, 1 kPa at 869 °C, 10 kPa at 999 °C, and 100 kPa at 1172 °C. Molecular BeF2 in the gaseous state is isoelectronic to carbon dioxide.

"Molecules" of liquid beryllium fluoride have a fluctuating tetrahedral structure. Additionally, the density of liquid BeF2 decreases near its freezing point, as Be2+ and F ions begin to coordinate more strongly with one another, leading to the expansion of voids between formula units.

Production

The processing of beryllium ores generates impure Be(OH)2. This material reacts with ammonium bifluoride to give ammonium tetrafluoroberyllate:

    Be(OH)2 + 2 (NH4)HF2 → (NH4)2BeF4 + 2 H2O

Tetrafluoroberyllate is a robust ion, which allows its purification by precipitation of various impurities as their hydroxides. Heating purified (NH4)2BeF4 gives the desired product:

    (NH4)2BeF4 → 2 NH3 + 2 HF + BeF2

In general the reactivity of BeF2 ions with fluoride are quite analogous to the reactions of SiO2 with oxides.

Applications

Reduction of BeF2 at 1300 °C with magnesium in a graphite crucible provides the most practical route to metallic beryllium:

    BeF2 + Mg → Be + MgF2

The chloride is not a useful precursor because of its volatility. [citation needed]

Niche uses

Beryllium fluoride is used in biochemistry, particularly protein crystallography as a mimic of phosphate. Thus, ADP and beryllium fluoride together tend to bind to ATP sites and inhibit protein action, making it possible to crystallise proteins in the bound state.

Beryllium fluoride forms a basic constituent of the preferred fluoride salt mixture used in liquid-fluoride nuclear reactors. Typically beryllium fluoride is mixed with lithium fluoride to form a base solvent (FLiBe), into which fluorides of uranium and thorium are introduced. Beryllium fluoride is exceptionally chemically stable, and LiF/BeF2 mixtures (FLiBe) have low melting points (360–459 °C) and the best neutronic properties of fluoride salt combinations appropriate for reactor use. MSRE used two different mixtures in the two cooling circuits.

Safety

Beryllium compounds are highly toxic. The increased toxicity of beryllium in the presence of fluoride has been noted as early as 1949. The LD50 in mice is about 100 mg/kg by ingestion and 1.8 mg/kg by intravenous injection.

References

Tags:

Beryllium Fluoride PropertiesBeryllium Fluoride Structure and bondingBeryllium Fluoride ProductionBeryllium Fluoride ApplicationsBeryllium Fluoride SafetyBeryllium FluorideBerylliumChemical formulaFluorineInorganic compound

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