What measurements are needed in the titration of a weak acid? Explain in detail the technique or procedure for adding the titrant to accurately determine the concentration and pKa of a weak acid.

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An acid-base titration is a quantitative analysis of acids and bases; through this process, an acid or base of known concentration neutralizes an acid or base of unknown concentration.The titration progress can be monitored by visual indicators, pH electrodes, or both.The reaction's equivalence point is the point at which the titrant has exactly neutralized the acid or base in the unknown analyte; if you know the volume and concentration of the titrant at the equivalence point, you can calculate the concentration of a base or acid in the unknown solution.

Titration has been defined as the neutralization of the acid with the base. The reaction has resulted in the formation of the salt.

When there has not had enough amount of acid or base available, the product formation will be disturbed, resulting in the endpoint of the titration.

The salt has been the composition of acid and base in a fixed proportion. Thus the amount of acid or base neutralized can be determined with the known amount of any of the acid or base.

The titration of weak acid has been performed with the presence of an indicator and the known concentration of the base for the reaction. The titration has been performed with the neutralization of the acid by the addition of known volume and concentration of base.

The complete neutralization of the reaction results in the reaction of the excess base to the indicator for the analysis of the reaction endpoint.

From the volume and concentration of the base required to neutralize the known volume of the acid, the concentration of acid has been determined.

The pKa has been the acid dissociation constant that has been determined in the sample with the change in the pH of the sample and thereby the titration curve.

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