Ask Question
24 December, 13:27

You need to prepare a solution with a specific concentration of Na+Na + ions; however, someone used the end of the stock solution of NaClNaCl, and there isn't any NaClNaCl to be found in the lab. You do, however, have some Na2SO4Na2SO4. Can you substitute the same number of grams of Na2SO4Na2SO4 for the NaClNaCl in a solution? Why or why not?

+1
Answers (1)
  1. 24 December, 15:12
    0
    Ionic equation

    NaCl (aq) - -> Na + (aq) + Cl - (aq)

    Na2SO4 (aq) - -> 2Na + (aq) + SO4^2 - (aq)

    In NaCl solution, 1 mole of Na + is dissociated in 1 liter of solution while in Na2SO4, 2 moles of Na + is dissociated in 1 liter of solution.

    Molecular weight of NA2SO4 = (23*2) + 32 + (16*4)

    = 142 g/mol

    Molecular weight of NaCl = 23 + 35.5

    = 58.5 g/mol

    Masses

    % Mass of NA + in Na2SO4 = mass of Na+/total mass of Na2SO4 * 100

    = 46/142 * 100

    = 32.4%

    % Mass of NA + in NaCl = mass of Na+/total mass of NaCl * 100

    = 23/58.5 * 100

    = 39.3%

    Therefore, the % mass of Na + in NaCl and Na2SO4 are different so it cannot be used.
Know the Answer?
Not Sure About the Answer?
Find an answer to your question ✅ “You need to prepare a solution with a specific concentration of Na+Na + ions; however, someone used the end of the stock solution of ...” in 📘 Chemistry if you're in doubt about the correctness of the answers or there's no answer, then try to use the smart search and find answers to the similar questions.
Search for Other Answers