QuestionAugust 10, 2025

Suppose you had to titrate a solution of NaOH of unknown concentration with a solution of HCl of known concentration using phenolphthalein as an indicator. How will you determine the color change? square

Suppose you had to titrate a solution of NaOH of unknown concentration with a solution of HCl of known concentration using phenolphthalein as an indicator. How will you determine the color change? square
Suppose you had to titrate a solution of NaOH of unknown concentration with a solution of HCl of known concentration
using phenolphthalein as an indicator. How will you determine the color change?
square

Solution
4.3(228 votes)

Answer

The solution changes from colorless to faint pink at the endpoint. Explanation 1. Understand the Indicator Phenolphthalein changes color in a pH range of approximately 8.2 to 10, turning from colorless to pink. 2. Identify Endpoint The endpoint is reached when the solution turns faint pink, indicating neutralization. 3. Determine Color Change As HCl is added to NaOH, the solution will remain colorless until it reaches a slightly basic pH, then turn faint pink at the endpoint.

Explanation

1. Understand the Indicator<br /> Phenolphthalein changes color in a pH range of approximately 8.2 to 10, turning from colorless to pink.<br />2. Identify Endpoint<br /> The endpoint is reached when the solution turns faint pink, indicating neutralization.<br />3. Determine Color Change<br /> As HCl is added to NaOH, the solution will remain colorless until it reaches a slightly basic pH, then turn faint pink at the endpoint.
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