Determine an unknown concentration or volume using an acid-base titration. Calculate the volume of 0.123M barium hydroxide required to neutralize 15.2 mL of a 0.308 M nitric acid solution. mL

Principles of Modern Chemistry
8th Edition
ISBN:9781305079113
Author:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
Publisher:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
Chapter15: Acid–base Equilibria
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Determine an unknown concentration or volume using an acid-base titration.
Calculate the volume of 0.123 M barium hydroxide required to neutralize 15.2 mL of a 0.308 M nitric acid solution.
mL
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It is often important to have an accurate concentration of an acid or base solution. With standardization, another type of acid-base
titration, the concentration of an acid or base is determined accurately by the use of either a primary standard or another solution whose
concentration has already been determined. A primary standard is an acid or base that can be obtained in a very pure form, such as
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F10
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Transcribed Image Text:Close Pro Determine an unknown concentration or volume using an acid-base titration. Calculate the volume of 0.123 M barium hydroxide required to neutralize 15.2 mL of a 0.308 M nitric acid solution. mL Check & Submit Answer Show Approach It is often important to have an accurate concentration of an acid or base solution. With standardization, another type of acid-base titration, the concentration of an acid or base is determined accurately by the use of either a primary standard or another solution whose concentration has already been determined. A primary standard is an acid or base that can be obtained in a very pure form, such as ■ 部 étv hulu 20 20 F10 D00 F4 F5 F8 F3 F6
Expert Solution
Step 1

We are given 

Molariy of acid(M1)= 0.308M 

Volume of acid(V1) = 15.2mL 

Molariy of barium hydroxide (M2) = 0.123M 

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