Question #00a68

1 Answer
Ernest Z.
Sep 17, 2014

First, you must recognize that this is a double displacement reaction.

Explanation:

Next you must write the ionic formulas for the products.

You know that "NO"_3NO3 has an ionic charge of -1 and "S"S has a charge of -2. So the ionic charge on "B"iBi is +3, while on "Ba"Ba it is -2.

After the cations have changed partners, the formulas of the products are "Bi"_2"S"_3Bi2S3 and "Ba"("NO"_3)_2Ba(NO3)2.

Next, you use the solubility rules to determine if there are any precipitates.

In this case, the important rules are:

  1. All nitrates are soluble.
  2. All sulfides are insoluble except those of Groups 1 and 2.

So

  • "Ba"("NO"_3)_2Ba(NO3)2 is soluble.

  • "BaS"BaS is soluble, because "Ba"Ba is in Group 2.

  • "B"_2"S"_3B2S3 is insoluble, because "Bi"Bi is in group 15.

The unbalanced molecular equation is

"Bi"("NO"_3)_3"(aq)" + "BaS (aq") → "Bi"_2"S"_3"(s)" + "Ba"("NO"_3)_2"(aq)"Bi(NO3)3(aq)+BaS (aq)Bi2S3(s)+Ba(NO3)2(aq)

The balanced molecular equation is

"2Bi"("NO"_3)_3"(aq)" + "3BaS(aq)" → "Bi"_2"S"_3"(s)" + "3Ba"("NO"_3)_2(aq)2Bi(NO3)3(aq)+3BaS(aq)Bi2S3(s)+3Ba(NO3)2(aq)

The total ionic equation is

"2Bi"^(3+)"(aq)" + "6NO"_3^(-)"(aq)" + "3Ba"^(2+)"(aq)" + "3S"^(2-)"(aq)" → "Bi"_2"S"_3"(s)" + "3Ba"^(2+)"(aq)"+ "6NO"_3^(-)"(aq)"2Bi3+(aq)+6NO3(aq)+3Ba2+(aq)+3S2(aq)Bi2S3(s)+3Ba2+(aq)+6NO3(aq)

To get the net ionic equation, we cancel the spectator ions.

"2Bi"^(3+)"(aq)" + color(red)(cancel(color(black)("6NO"_3^(-)"(aq)"))) + color(red)(cancel(color(black)("3Ba"^(2+)"(aq)"))) + "3S"^(2-)"(aq)" → "Bi"_2"S"_3"(s)" + color(red)(cancel(color(black)("3Ba"^(2+)"(aq)"))) + color(red)(cancel(color(black)("6NO"_3^(-)"(aq)")))

"2Bi"^(3+)"(aq)" + "3S"^(2-)"(aq)" → "Bi"_2"S"_3"(s)"

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Here's a good video on solubility rules and net ionic equations.

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