Respuesta :
Data:
m (molality) = 0.950 mol/Kg
moles of solute = ? (mol) = ?
mass of solvent = 85.4 g → 0.0854 Kg
Formula:
[tex]m = \frac{moles\:of\:solute}{mass\:of\:solvent} [/tex]
Solving:
[tex]m = \frac{moles\:of\:solute}{mass\:of\:solvent} [/tex]
[tex]0.950\:mol/\diagup\!\!\!\!\!\!K\diagup\!\!\!\!\!\!g = \frac{moles\:of\:solute}{0.0854\:\diagup\!\!\!\!\!\!K\diagup\!\!\!\!\!\!g} [/tex]
[tex]moles\:of\:solute = 0.950*0.0854[/tex]
[tex]\boxed{\boxed{moles\:of\:solute = 0.08113 \approx 0.0811\:mol}}[/tex]Â [tex]\end{array}}\qquad\quad\checkmark[/tex]
Answer:
0.0811 mol
m (molality) = 0.950 mol/Kg
moles of solute = ? (mol) = ?
mass of solvent = 85.4 g → 0.0854 Kg
Formula:
[tex]m = \frac{moles\:of\:solute}{mass\:of\:solvent} [/tex]
Solving:
[tex]m = \frac{moles\:of\:solute}{mass\:of\:solvent} [/tex]
[tex]0.950\:mol/\diagup\!\!\!\!\!\!K\diagup\!\!\!\!\!\!g = \frac{moles\:of\:solute}{0.0854\:\diagup\!\!\!\!\!\!K\diagup\!\!\!\!\!\!g} [/tex]
[tex]moles\:of\:solute = 0.950*0.0854[/tex]
[tex]\boxed{\boxed{moles\:of\:solute = 0.08113 \approx 0.0811\:mol}}[/tex]Â [tex]\end{array}}\qquad\quad\checkmark[/tex]
Answer:
0.0811 mol