Question

158 mL of a 0.148M NaCl solution is added to 228 mL of a 0.369M NH4NO3 solution. What's the concentration of ammonium ions?

What is the concentration of ammonium ions in the resulting mixture and how would one go about solving this?

Answer 1

`"0.212 M"`.

Explanation:

This is the formula for finding molarity:

`"molarity" = "number of moles"/"volume (L)"`

First, let's find the number of moles of ammonium ions in the resulting solution:

• In `"158 mL"`, or `"0.158 L"` of `"0.148 M"` `NaCl` solution, there are no ammonium ions.
• In `"228 mL"`, or `"0.228 L"` of `"0.369 M"` `NH_4NO_3` solution, there are `"0.369 mol/L" xx "0.228 L" = 0.0819` moles of ammonium ions.

That means that the total number of ammonium ions in the final solution is `0.0819` moles.

Then, we just need to add up the volumes of the two mixed solutions to find the volume of our final product.

`"158 mL + 228 mL = 386 mL"`
`"386 mL = 0.386 L"`

Finally, we can just plug in these values to find molarity! :)

`"molarity" = "number of moles"/"volume (L)"`

`"molarity" = "0.0819 mol"/"0.386 L" = "0.212 M"`