Question #f7924

2 Answers
Sep 29, 2017

They react and form copper iodide(I) (#CuI#) and pottasium triodide(#KI_3#).
Thank you for Gaya3's post.

Explanation:

I thought that reaction with copper sulfate(#CuSO_4#) and potassium iodide(#KI#) does'nt happen for two reasons, but it was wrong.

This is what I have written:


(1) Potassium cation (#K^+#) is very stable. #K# is one of alkali metals, which lies in the group 1 in the periodic table. In general,
alkali metal cations form no precipitation with any anions.

(2) Iodine anion (#I^-#) is also very stable. #I# is one of halogens,
in the group 17 in the periodic table. Halogen anions don't
precipitate expect with #Ag^+# and #Pb^(2+)#.


What I did not notice was the fact that #I^-# has strong reducibility. Please see Gaya3's post for the chemical equation.

Sep 29, 2017

Yes!

Explanation:

Equation:

#color(blue)(CuSO_4) + color(red)(KI) -> color(orange)(CuI) + color(violet)(K_2SO_4) + color(green)(KI3#

After Balancing,

#color(blue)(2CuSO_4 + color(red)(5KI -> color(orange)(2CuI + color(violet)(2K_2SO_4 + color(green)(KI_3#

Watch it happen here