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Caesium fluoride ( cesium fluoride in ) is an inorganic compound with the formula CsF. A white salt, caesium fluoride is used in the synthesis of organic compounds as a source of the fluoride anion.

(2025). 9780471936237
The compound is noteworthy from the pedagogical perspective as also has the highest electropositivity of all commonly available elements and has the highest electronegativity.


Synthesis and properties
Caesium fluoride can be prepared by the reaction of caesium hydroxide (CsOH) with hydrofluoric acid (HF) and the resulting salt can then be purified by recrystallization. The reaction is shown below:

CsOH + HF → CsF + H2O

Using the same reaction, another way to create caesium fluoride is to treat caesium carbonate (Cs2CO3) with hydrofluoric acid and again, the resulting salt can then be purified by recrystallization. The reaction is shown below:

Cs2CO3 + 2 HF → 2 CsF + H2O + CO2

CsF is more soluble than or potassium fluoride in organic solvents. It is available in its anhydrous form, and if water has been absorbed, it is easy to dry by heating at 100 °C for two hours .

(1999). 9780471979258, Wiley.
CsF reaches a of 1 at 825 °C, 10 kPa at 999 °C, and 100 kPa at 1249 °C.
(2025). 9780849304866, CRC Press.


Structure
Caesium fluoride has the structure, which means that the Cs+ and F pack in a cubic closest packed array as do Na+ and Cl in sodium chloride. Unlike sodium chloride, caesium fluoride's anion is smaller than its cation, so it is the anion size that sterically inhibits larger coordination numbers than six under normally encountered conditions. A larger halide ion would allow for the eight-coordination seen in other caesium halide crystals.


Applications in organic synthesis
Being highly dissociated, CsF is a more reactive source of fluoride than related alkali metal salts. CsF is an alternative to tetra-n-butylammonium fluoride (TBAF) and (TASF).


As a base
As with other soluble fluorides, CsF is moderately basic, because HF is a . The low of means it can be a useful base in organic chemistry. CsF gives higher yields in Knoevenagel condensation reactions than KF or .


Formation of Cs-F bonds
Caesium fluoride serves as a source of fluoride in organofluorine chemistry. Similarly to fluoride, CsF reacts with hexafluoroacetone to form a stable perfluoroalkoxide salt. It will convert electron-deficient to fluorides (), although potassium fluoride is more commonly used.


Deprotection agent
Due to the strength of the bond, fluoride is useful for reactions, i.e., cleavage of Si-O bonds in organic synthesis. CsF is commonly used for such reactions. Solutions of caesium fluoride in or DMF attack a wide variety of compounds to produce an organosilicon fluoride and a , which can then react with , for example:


Precautions
Like other soluble fluorides, CsF is moderately toxic. Contact with should be avoided, as this forms highly toxic/corrosive hydrofluoric acid. The caesium (Cs+) and are generally not considered toxic.

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