What is the pOH of 0.1MKB (salt of weak acid and strong base) at 25° C ? (Given: pK b of . B -=7)

Question

What is the pOH of 0.1MKB (salt of weak acid and strong base) at 25° C ? (Given: pK b of . B -=7) (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

For salt of weak acid and strong base; mathrmpH=7+(1/2) mathrmpK mathrma+(1/2) log mathrmC(. at .25°) =7+(1/2)× 7+(1/2)log10- 1 =7+3.5-0.5 ∴ pH=10 So, mathrmpOH=4 (at .25° mathrmC)

Q. What is the $pO H$ of $0.1 M K B$ (salt of weak acid and strong base) at $2 5^{\circ} C ?$ (Given: $p K_{b}$ of $B^{-} = 7)$

For salt of weak acid and strong base;
$pH = 7 + \frac{1}{2} pK_{a} + \frac{1}{2} lo g C ($ at $2 5^{\circ})$
$= 7 + \frac{1}{2} \times 7 + \frac{1}{2} l o g 1 0^{- 1}$
$= 7 + 3.5 - 0.5$
$∴ p H = 10$
So, $pOH = 4$ (at $2 5^{\circ} C)$

Q. What is the pOH of 0.1MKB (salt of weak acid and strong base) at 25∘C? (Given: pKb​ of B−=7)

For salt of weak acid and strong base; pH=7+21​pKa​+21​logC( at 25∘) =7+21​×7+21​log10−1 =7+3.5−0.5 ∴pH=10 So, pOH=4 (at 25∘C)

Q. What is the $pO H$ of $0.1 M K B$ (salt of weak acid and strong base) at $2 5^{\circ} C ?$ (Given: $p K_{b}$ of $B^{-} = 7)$

For salt of weak acid and strong base;
$pH = 7 + \frac{1}{2} pK_{a} + \frac{1}{2} lo g C ($ at $2 5^{\circ})$
$= 7 + \frac{1}{2} \times 7 + \frac{1}{2} l o g 1 0^{- 1}$
$= 7 + 3.5 - 0.5$
$∴ p H = 10$
So, $pOH = 4$ (at $2 5^{\circ} C)$