The solubility of solid silver chromate....

The solubility of solid silver chromate. `Ag_(2) CrO_(4)` . is determined in three solvents. Substance `K_(sp) ` of `Ag_(2) CrO_(4) = 9 xx 10^(-12)`
(I) pure water (ii) 0.1 M `AgNO_(3) " " `(iii) 0.1 M `Na_(2) CrO_(4)`
Predict the relative solubility of `Ag_(2) CrO_(4)` in the three solvents:

A

I = II = III

B

I `lt ` II `lt `III

C

II = III `lt` I

D

`II lt III lt ` I

Text Solution

Verified by Experts

The correct Answer is:

D

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The solubility of Ag_(2) CrO_(4) is 1.3xx10^(-4) "mol L"^(-1) . Whatis the solubility product ?

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Knowledge Check

The solubility of solid silver chromate, Ag_2CrO_4, is determined in three solvents. Substance K_(sp) of Ag_2CrO_4 = 9 xx 10^(-12) (1) pure water (II) 0.1 M AgNO_3 (III) 0.1 M Na _2 CrO_4 Predict the relative solubility of Ag_2CrO_4 . in the three solvents:

A

`I = II = III`

B

` I lt II lt III`

C

` II = III lt I`

D

`II lt III lt I`

The solubility of solid silver chromate, Ag_2CrO_4, is determined in three solvents. Substance K_(sp) of Ag_2CrO_4 = 9 xx 10^(-12) (1) pure water (II) 0.1 M AgNO_3 (III) 0.1 M Na _2 CrO_4 Predict the relative solubility of Ag_2CrO_4 . in the three solvents:

A

`I = II = III`

B

` I lt II lt III`

C

` II = III lt I`

D

`II lt III lt I`

The volume of 0.1 M AgNO_(3) should be added to 10.0 ml of 0.09 M K_(2)CrO_(4) to precipitate all the chromate as Ag_(2)CrO_(4) is

A

18 ml

B

9 ml

C

27 ml

D

36 ml

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Calculate the solubility product of Ag_(2)CrO_(4) at 298k, if the EMF of the concentration cell, Ag, Ag^(+)("solid" Ag_(2)CrO_(4))"//"Ag^(+)(0.1M) , Ag is 0.164 V.

The solubility of AgCl in 0.1M NaCI is (K_(sp) " of AgCl" = 1.2 xx 10^(-10))

The solubility of AgCl in 0.1 M NaCl is (K_(sp) " of " AgCl =1.2 xx 10 ^(-10 ) )

To Ag_(2)CrO_(4) solution over its own percipitate CrO_(4)^(2-) ions are added . This results in

(A) Solution of Na_2CrO_4 in water is intensely coloured. (R) Oxidation state of Cr in Na_(2)CrO_(4) is +VI

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