Chem Mantra
⚗️ Chem-MantraJEE Advanced Chemistry
AITS & Test SerieshardNUMERICAL

See imageAITS & Test Series Chemistry Question

Question

See image

Chemistry diagram for: See image
Answer: 9

💡 Solution & Explanation

Kb = 10-5, pKb = 5 BOH + HCl  BCl + H2O At half neutralization, 50% of the base is converted to its salt, with strong acid HCl, it forms a basic buffer.     b salt pOH pK log base       salt pOH 5 log base   [salt] = [base] pOH = 5 pH = 14 – pOH = 9

💬
Still have doubts about this question?
Send it to our AI chemistry tutor on WhatsApp — gets answered in minutes
Ask on WhatsApp →

Practice 22,000+ questions like this

AI-adaptive practice, video lectures, and full JEE Advanced Chemistry content — all in one place.

Explore Courses →Free on YouTube

JEE Advanced · JEE Mains · NEET · IChO · AP Chemistry