20 mL of 0.1 M acetic acid is taken in a beaker. To this, 10 mL of 0.1 M NaOH solution is mixed. The pH of the resulting solution is. [ pK a . of acetic acid .=4.74]

Question

20 mL of 0.1 M acetic acid is taken in a beaker. To this, 10 mL of 0.1 M NaOH solution is mixed. The pH of the resulting solution is. [ pK a . of acetic acid .=4.74] (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Moles of acetic acid =0.1 × 20 / 1000 =0.002 mol Moles of NaOH =0.1 × 10 / 1000=0.001 mol <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/chemistry/6bf1d0a068b0120b04af16bd99794800-.png" /> pH = pK a + log 10 ([ text salt ]/[ text acid ]) (Henderson's equation) ∴ pH =4.74+ log 10 ((0.001)/(0.001)) =4.74+ log 10 1=4.74+0=4.74

Q. $20 m L$ of $0.1 M$ acetic acid is taken in a beaker. To this, $10 m L$ of $0.1 M N a O H$ solution is mixed. The $p H$ of the resulting solution is______.
$[p K_{a}$ of acetic acid $= 4.74]$

Moles of acetic acid $= 0.1 \times 20/1000$
$= 0.002 m o l$
Moles of $N a O H = 0.1 \times 10/1000 = 0.001 m o l$

$p H = p K_{a} + lo g_{10} \frac{[ salt ]}{[ acid ]}$ (Henderson's equation)
$∴ p H = 4.74 + lo g_{10} \frac{( 0.001 )}{( 0.001 )}$
$= 4.74 + lo g_{10} 1 = 4.74 + 0 = 4.74$

Q. 20mL of 0.1M acetic acid is taken in a beaker. To this, 10mL of 0.1MNaOH solution is mixed. The pH of the resulting solution is______. [pKa​ of acetic acid =4.74]

Moles of acetic acid =0.1×20/1000 =0.002mol Moles of NaOH=0.1×10/1000=0.001mol pH=pKa​+log10​[ acid ][ salt ]​ (Henderson's equation) ∴pH=4.74+log10​(0.001)(0.001)​ =4.74+log10​1=4.74+0=4.74

Q. $20 m L$ of $0.1 M$ acetic acid is taken in a beaker. To this, $10 m L$ of $0.1 M N a O H$ solution is mixed. The $p H$ of the resulting solution is______.
$[p K_{a}$ of acetic acid $= 4.74]$

Moles of acetic acid $= 0.1 \times 20/1000$
$= 0.002 m o l$
Moles of $N a O H = 0.1 \times 10/1000 = 0.001 m o l$

$p H = p K_{a} + lo g_{10} \frac{[ salt ]}{[ acid ]}$ (Henderson's equation)
$∴ p H = 4.74 + lo g_{10} \frac{( 0.001 )}{( 0.001 )}$
$= 4.74 + lo g_{10} 1 = 4.74 + 0 = 4.74$