Answer:
1.30464 grams of glucose was present in 100.0 mL of final solution.
Explanation:
[tex]Molarity=\frac{moles}{\text{Volume of solution(L)}}[/tex]
Moles of glucose = [tex]\frac{18.5 g}{180 g/mol}=0.1028 mol[/tex]
Volume of the solution = 100 mL = 0.1 L (1 mL = 0.001 L)
Molarity of the solution = [tex]\frac{0.1028 mol}{0.1 L}=1.028 mol/L[/tex]
A 30.0 mL sample of above glucose solution was diluted to 0.500 L:
Molarity of the solution before dilution = [tex]M_1=1.208 mol[/tex]
Volume of the solution taken = [tex]V_1=30.0 mL[/tex]
Molarity of the solution after dilution = [tex]M_2[/tex]
Volume of the solution after dilution= [tex]V_2=0.500L = 500 mL[/tex]
[tex]M_1V_1=M_2V_2[/tex]
[tex]M_2=\frac{M_1V_1}{V_2}=\frac{1.208 mol/L\times 30.0 mL}{500 mL}[/tex]
[tex]M_2=0.07248 mol/L[/tex]
Mass glucose are in 100.0 mL of the 0.07248 mol/L glucose solution:
Volume of solution = 100.0 mL = 0.1 L
[tex]0.07248 mol/L=\frac{\text{moles of glucose}}{0.1 L}[/tex]
Moles of glucose = [tex]0.07248 mol/L\times 0.1 L=0.007248 mol[/tex]
Mass of 0.007248 moles of glucose :
0.007248 mol × 180 g/mol = 1.30464 grams
1.30464 grams of glucose was present in 100.0 mL of final solution.
