Copper(I) iodide


Copper iodide is the inorganic compound with the formula CuI. It is also known as cuprous iodide. It is useful in a variety of applications ranging from organic synthesis to cloud seeding.
Pure copper iodide is white, but samples are often tan or even, when found in nature as rare mineral marshite, reddish brown, but such color is due to the presence of impurities. It is common for samples of iodide-containing compounds to become discolored due to the facile aerobic oxidation of the iodide anion to molecular iodine.

Structure

Copper iodide, like most binary metal halides, is an inorganic polymer. It has a rich phase diagram, meaning that it exists in several crystalline forms. It adopts a zinc blende structure below 390 °C, a wurtzite structure between 390 and 440 °C, and a rock salt structure above 440 °C. The ions are tetrahedrally coordinated when in the zinc blende or the wurtzite structure, with a Cu-I distance of 2.338 Å. Copper bromide and copper chloride also transform from the zinc blende structure to the wurtzite structure at 405 and 435 °C, respectively. Therefore, the longer the copper – halide bond length, the lower the temperature needs to be to change the structure from the zinc blende structure to the wurtzite structure. The interatomic distances in copper bromide and copper chloride are 2.173 and 2.051 Å, respectively.

γ-CuI
β-CuI
α-CuI

Preparation

Copper iodide can be prepared by heating iodine and copper in concentrated hydriodic acid, HI.
In the laboratory however, copper iodide is prepared by simply mixing an aqueous solution of sodium or potassium iodide and a soluble copper salt such copper sulfate.
The CuI2 immediately decomposes to iodine and insoluble copper iodide, releasing I2.
This reaction has been employed as a means of assaying copper samples, since the evolved I2 can be analyzed by redox titration. The reaction in itself may look rather odd, as using the rule of thumb for a proceeding redox reaction, Eooxidator − Eoreductor > 0, this reaction fails. The quantity is below zero, so the reaction should not proceed. But the equilibrium constant for the reaction is 1.38*10−13. By using fairly moderate concentrates of 0.1 mol/L for both iodide and Cu2+, the concentration of Cu+ is calculated as 3*10−7. As a consequence, the product of the concentrations is far in excess of the solubility product, so copperiodide precipitates. The process of precipitation lowers the copper concentration, providing an entropic driving force according to Le Chatelier's principle, and allowing the redox reaction to proceed.

Properties

CuI is poorly soluble in water, but it dissolves in the presence of NaI or KI to give the linear anion . Dilution of such solutions with water reprecipitates CuI. This dissolution–precipitation process is employed to purify CuI, affording colorless samples.
Copper iodide can be dissolved in acetonitrile, yielding a solution of different complex compounds. Upon crystallization, molecular or polymeric compounds can be isolated. Dissolution is also observed when a solution of the appropriate complexing agent in acetone or chloroform is used. For example, thiourea and its derivatives can be used. Solids that crystallize out of those solutions are composed of hybrid inorganic chains.

Uses

CuI has several uses: