How do you write balanced, net ionic equations for 1). #"Cu"^(2+) and text(F)^-#, and #"Cu"^(2+) and "Cl"^-#?

Aqueous copper(II) sulfate solution is blue in color. When aqueous potassium fluoride is added, a green precipitate is formed. When aqueous potassium chloride is added instead, a bright-green solution is formed. (Use the lowest possible coefficients. Include states-of-matter under SATP conditions in your answer.)

1 Answer
Ernest Z.
May 6, 2018

Here's what I get.

Explanation:

1) #"Cu"^"2+"# and #"F"^"-"#

Molecular equation:

#"CuSO"_4"(aq)" + "2KF(aq)" → "CuF"_2"(s)" + "K"_2"SO"_4"(aq)"#

Ionic equation

#"Cu"^"2+""(aq)" + "SO"_4"(aq)" + "2K"^"+""(aq)" + "2F"^"-""(aq)"#

#→ "CuF"_2"(s)" + "2K"^"+""(aq)" + "SO"_4^"2-""(aq)"#

Net ionic equation

#"Cu"^"2+""(aq)" +color(red)(cancel(color(black)( "SO"_4"(aq)"))) + color(red)(cancel(color(black)("2K"^"+""(aq)"))) + "2F"^"-""(aq)"#

#→ "CuF"_2"(s)" + color(red)(cancel(color(black)("2K"^"+""(aq)"))) + color(red)(cancel(color(black)("SO"_4^"2-""(aq)")))#

#underbrace("Cu"^"2+""(aq)")_color(red)("blue") + "2F"^"-""(aq)" → underbrace("CuF"_2"(s)")_color(red)("green")#

2) #"Cu"^"2+""(aq)"# and #"Cl"^"-""(aq)"#

Molecular equation

#"CuSO"_4"(aq)" + "4KCl(aq)" → "K"_2"CuCl"_4"(aq)" + "K"_2"SO"_4"(aq)"#

Ionic equation

#"Cu"^"2+""(aq)" + "SO"_4^"2-""(aq)" + "4K"^"+""(aq)" + "4Cl"^"-""(aq)"#

#→ "2K"^"+""(aq)" + "CuCl"_4^"2-""(aq)" + "2K"^"+""(aq)" + "SO"_4^"2-""(aq)"#

Net ionic equation

#"Cu"^"2+""(aq)" + color(red)(cancel(color(black)("SO"_4^"2-""(aq)"))) + color(red)(cancel(color(black)("4K"^"+""(aq)"))) + "4Cl"^"-""(aq)"#

#→ color(red)(cancel(color(black)("2K"^"+""(aq)"))) + "CuCl"_4^"2-""(aq)" + color(red)(cancel(color(black)("2K"^"+""(aq)"))) + color(red)(cancel(color(black)("SO"_4^"2-""(aq)")))#

#underbrace("Cu"^"2+""(aq)")_color(red)("blue") + "4Cl"^"-""(aq)" → underbrace("CuCl"_4^"-""(aq)")_color(red)("green")#

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