Two aqueous solutions contain the ions indicated below. + Na+ CO3 2 Ca2+ Cl = = = = 250

Chapter 4, Problem 4.150

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QUESTION:

Two aqueous solutions contain the ions indicated below. + Na+ CO3 2 Ca2+ Cl = = = = 250. mL 250. mL (a) Write balanced molecular, total ionic, and net ionic equations for the reaction that occurs when the solutions are mixed. (b) If each sphere represents 0.050 mol of ion, what mass (in g) of precipitate forms, assuming 100% yield? (c) What is the concentration of each ion in solution after reaction?

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QUESTION:

Two aqueous solutions contain the ions indicated below. + Na+ CO3 2 Ca2+ Cl = = = = 250. mL 250. mL (a) Write balanced molecular, total ionic, and net ionic equations for the reaction that occurs when the solutions are mixed. (b) If each sphere represents 0.050 mol of ion, what mass (in g) of precipitate forms, assuming 100% yield? (c) What is the concentration of each ion in solution after reaction?

ANSWER:

Step 1 of 4

(a)

The first beaker contains  solution and the second beaker contains  solution.

The reaction that takes place on mixing both the solutions is as follows:

                           

The ionic equation of the given reaction is as follows:

           

Cancel the spectator ions to get the net-ionic equation.

The net-ionic equation is as follows:

                                   

 

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