The ionization constant of phenol is 1.0 × 10-10 . Thus, pH of a mixture of 0.05 M phenolate ion and 0.01 M phenol solution, is

Question

The ionization constant of phenol is 1.0 × 10-10 . Thus, pH of a mixture of 0.05 M phenolate ion and 0.01 M phenol solution, is (A) 10.7 (B) 1.0 (C) 5.0 (D) 11.2

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<img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/chemistry/afaf569f8463c06d15102992442a110f-.png" /> Ka=([B][ H 3 O +]/0.01) 1. 0 × 10-10=(0.05 ×[ H 3 O +]/0.01) ∴ [ H 3 O +] =(1.0 × 10-10/5)=2 × 10-11 ∴ pH =- log [ H 3 O +]=- log (2 × 10-11) pH =10.7

Q. The ionization constant of phenol is $1.0 \times 1 0^{- 10} .$ Thus, $p H$ of a mixture of $0.05 M$ phenolate ion and $0.01 M$ phenol solution, is

10.7

1.0

5.0

11.2

$K_{a} = \frac{[ B ] [ H _{3} O ^{+} ]}{0.01}$

$1.0 \times 1 0^{- 10} = \frac{0.05 \times [ H _{3} O ^{+} ]}{0.01}$

$∴ [H_{3} O^{+}] = \frac{1.0 \times 1 0 ^{- 10}}{5} = 2 \times 1 0^{- 11}$
$∴ p H = - lo g [H_{3} O^{+}] = - lo g (2 \times 1 0^{- 11})$

$p H = 10.7$

Q. The ionization constant of phenol is 1.0×10−10. Thus, pH of a mixture of 0.05M phenolate ion and 0.01M phenol solution, is

10.7

1.0

5.0

11.2

Ka​=0.01[B][H3​O+]​ 1.0×10−10=0.010.05×[H3​O+]​ ∴[H3​O+]=51.0×10−10​=2×10−11 ∴pH=−log[H3​O+]=−log(2×10−11) pH=10.7

Q. The ionization constant of phenol is $1.0 \times 1 0^{- 10} .$ Thus, $p H$ of a mixture of $0.05 M$ phenolate ion and $0.01 M$ phenol solution, is

$K_{a} = \frac{[ B ] [ H _{3} O ^{+} ]}{0.01}$

$1.0 \times 1 0^{- 10} = \frac{0.05 \times [ H _{3} O ^{+} ]}{0.01}$

$∴ [H_{3} O^{+}] = \frac{1.0 \times 1 0 ^{- 10}}{5} = 2 \times 1 0^{- 11}$
$∴ p H = - lo g [H_{3} O^{+}] = - lo g (2 \times 1 0^{- 11})$

$p H = 10.7$