The for is . The molar solubility of this compound in pure water is given by: | Ionic Equilibrium — Chem-Mantra | Chem-Mantra

⚗️ Chem-Mantra JEE Mains Chemistry →

Ionic EquilibriummediumMCQ SINGLE⭐ Must-Do

Question

The $K_{sp}$ for $Cr(OH)_3$ is $1.6 \times 10^{-30}$. The molar solubility of this compound in pure water is given by:

Answer: A

💡 Solution & Explanation

For $Cr(OH)_3$ ($AB_3$ type salt), $K_{sp} = 27s^4$. Therefore, $27s^4 = 1.6 \times 10^{-30}$, which rearranges to molar solubility $s = (1.6 \times 10^{-30} / 27)^{1/4}$.

💬

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 Mains Chemistry content — all in one place.

Explore Courses →Free on YouTube

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