Solved: Calculate the volume in mL of a 1.420 M NaOH | StudySoup

Textbook Solutions for Chemistry

Chapter 4 Problem 91P

Question

Calculate the volume in \(\mathrm{mL}\) of a \(1.420 \ \mathrm{MaOH}\) solution required to titrate the following solutions:

(a) \(25.00 \mathrm{~mL}\) of a \(2.430 \mathrm{M} \ \mathrm{HCl}\) solution

(b) \(25.00 \mathrm{~mL}\) of a \(4.500 \mathrm{M} \ \mathrm{H}_{2} \mathrm{SO}_{4}\) solution

(c) \(25.00 \mathrm{~mL}\) of a \(1.500 \mathrm{M} \ \mathrm{H}_{3} \mathrm{PO}_{4}\) solution

Solution

Step 1 of 4

The goal of the problem is to calculate the volume (in \(\mathrm{mL}\) ) of a \(1.420 \mathrm{M} \mathrm{NaOH}\) solution required to titrate the following solutions:

The molarity can be calculated using the formula:

                                       \(\text { Molarity }=\frac{\text { moles of solute }}{\text { volume of solution }(\text { in } L)}\)

To calculate the volume the above formula can be rewritten as:

                                                 \(\text { Volume of solution (in L) }=\frac{\text { moles of solute }}{\text { molarity }}\)

 

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full solution

Title Chemistry 11 
Author Raymond Chang
ISBN 9780073402680

Solved: Calculate the volume in mL of a 1.420 M NaOH

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