The specific conductivity of a saturated solution of AgCl is 3.40 × 10-6 ohm -1 cm -1 at 25° C . If λ Ag +=62.3 ohm -1 cm 2 mol -1 λ cl =67.7 ohm -1 cm 2 mol -1, the solubility of AgCl at 25° C is :

Question

The specific conductivity of a saturated solution of AgCl is 3.40 × 10-6 ohm -1 cm -1 at 25° C . If λ Ag +=62.3 ohm -1 cm 2 mol -1 λ cl =67.7 ohm -1 cm 2 mol -1, the solubility of AgCl at 25° C is : (A) 2.6 × 10-5 M (B) 4.5 × 10-3 M (C) 3.6 × 10-5 M (D) 3.6 × 10-3 M

Tardigrade Admin · Accepted Answer

λA g+=62.3 Scm 2 mol -1, λcl-=67.7 Scm 2 mole -1 K text Agcl =3.4 × 10-6 Scm -1 ∧ AgCl ∞=(62.3+67.5) =(1000 × 3.4 × 10-6/ S ) S =(3.4 × 10-3/(62.3+67.5)) =2.6 × 10-5 M

Q. The specific conductivity of a saturated solution of $A g Cl$ is $3.40 \times 1 0^{- 6}$ ohm $^{- 1}$ $c m^{- 1}$ at $2 5^{\circ} C .$ If $λ_{A g +} = 62.3 o h m^{- 1} c m^{2}$ $m o l^{- 1} & λ_{c l} = 67.7 o h m^{- 1} c m^{2} m o l^{- 1}$ , the solubility of $A g Cl$ at $2 5^{\circ} C$ is :

$2.6 \times 1 0^{- 5} M$

$4.5 \times 1 0^{- 3} M$

$3.6 \times 1 0^{- 5} M$

$3.6 \times 1 0^{- 3} M$

Q. The specific conductivity of a saturated solution of AgCl is 3.40×10−6 ohm −1 cm−1 at 25∘C. If λAg+​=62.3ohm−1cm2 mol−1&λcl​=67.7ohm−1cm2mol−1, the solubility of AgCl at 25∘C is :

2.6×10−5M

4.5×10−3M

3.6×10−5M

3.6×10−3M

λAg+​=62.3Scm2mol−1, λcl−​=67.7Scm2mole−1 KAgcl ​=3.4×10−6Scm−1 ∧AgCl∞​=(62.3+67.5) =S1000×3.4×10−6​ S=(62.3+67.5)3.4×10−3​ =2.6×10−5M

Q. The specific conductivity of a saturated solution of $A g Cl$ is $3.40 \times 1 0^{- 6}$ ohm $^{- 1}$ $c m^{- 1}$ at $2 5^{\circ} C .$ If $λ_{A g +} = 62.3 o h m^{- 1} c m^{2}$ $m o l^{- 1} & λ_{c l} = 67.7 o h m^{- 1} c m^{2} m o l^{- 1}$ , the solubility of $A g Cl$ at $2 5^{\circ} C$ is :

$2.6 \times 1 0^{- 5} M$

$4.5 \times 1 0^{- 3} M$

$3.6 \times 1 0^{- 5} M$

$3.6 \times 1 0^{- 3} M$