gerald_mcdonald Posted March 30, 2011 Share Posted March 30, 2011 (edited) What mass of sodium sulfate is produced when 25.0 mL of 0.100 M sulfuric acid is added to 20.0 mL of 0.15 M sodium hydroxide solution? [latex]n=cV[/latex] [latex]n(H_{2}SO_{4})=0.100*0.0250=0.00250=2.50*10^{-3} mol[/latex] [latex]n=cV[/latex] [latex]n(NaOH)=0.15*0.0200=0.0030=3.0*10^{-3} mol[/latex] [latex]\frac{n(H_{2}SO_{4})}{n(NaOH)} =\frac{1}{2}[/latex] [latex]n(H_{2}SO_{4})[/latex] required [latex]= \frac{1}{2} * (3.0*10^{-3}) = 0.0015 = 1.5*10^{-3} mol[/latex] [latex]n(H_{2}SO_{4})[/latex] is in excess by [latex](2.50*10^{-3}-1.5*10^{-3}) 1.0*10^{-3} mol[/latex]. NaOH is the limiting reagent. [latex]\frac{n(Na_{2}SO_{4})}{n(NaOH)} = \frac{1}{2}[/latex] [latex]n(Na_{2}SO_{4})=\frac{1}{2}*(3.0*10^{-3}) =0.0015=1.5*10^{-3} mol[/latex] [latex]m=n*M[/latex] [latex]m(Na_{2}SO_{4})=\frac{1}{2}*(1.5*10^{-3}) * (2*22.9898+32.064+15.9994*4)= (1.5*10^{-3})*142.0412[/latex] [latex]=0.2130618[/latex] [latex]=0.21 g[/latex] Did I make any mistakes? Edited March 30, 2011 by gerald_mcdonald Link to comment Share on other sites More sharing options...
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