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How many moles of NaOH are present in 12.0mL of 0.110 M NaOH? Moles: _________

User Bob Marti
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1 Answer

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9 votes

NaOH

M = molarity (mol/L)


M\text{ = }\frac{mass\text{ of solute}}{\text{molecular mass of solute x volume of solution (L)}}=\frac{moles\text{ of solute}}{\text{volume of solution(L)}}
M=0.110\text{ }(mol)/(L)=\text{ }\frac{moles\text{ of NaOH}}{0.012L}

12.0 ml = 0.012 L


\text{moles of NaOH = 0.11 }(mol)/(L)x0.012L=1.32x10^{-3\text{ }}moles\text{ of NaOH}

Answer: moles of NaOH = 1.32x10^-3 moles


\text{moles NaOH = 1.32x10}^(-3)moles\text{ = 0.00132 moles NaOH}

User Changtung
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