QuestionApril 27, 2025

What is the [H^+] of 1.32M HF with 0.08M HBr?

What is the [H^+] of 1.32M HF with 0.08M HBr?
What is the [H^+] of 1.32M HF with 0.08M HBr?

Solution
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Answer

0.08M Explanation 1. Identify the Strong Acid HBr is a strong acid and dissociates completely in solution. Therefore, [H^+] from HBr is 0.08M. 2. Consider HF Contribution HF is a weak acid and partially dissociates. However, since HBr is a strong acid, its contribution to [H^+] is negligible compared to HBr. 3. Calculate Total [H^+] The total [H^+] is primarily from HBr, which is 0.08M.

Explanation

1. Identify the Strong Acid<br /> HBr is a strong acid and dissociates completely in solution. Therefore, $[H^+]$ from HBr is 0.08M.<br /><br />2. Consider HF Contribution<br /> HF is a weak acid and partially dissociates. However, since HBr is a strong acid, its contribution to $[H^+]$ is negligible compared to HBr.<br /><br />3. Calculate Total $[H^+]$<br /> The total $[H^+]$ is primarily from HBr, which is 0.08M.
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