The value of ksp for srso4 is 2.8x10-7. what is the solubility of srso4 in moles per liter? 7.6 x 10-7 1.4 x 10-7 5.3 x 10-4 2.8 x 10-7

Question

asked Dec 9, 2018 147k views

2 Answers

Peleyal · Answer 1 · 2018-12-11T09:51:38+0000

Answer : The correct answer is
.

Solution : Given,

K_(sp)=2.8* 10^(-7)

The balanced equilibrium reaction is,

$SrSO_4\rightleftharpoons Sr^(2+)+SO^(2-)_4$

At equilibrium s s

The expression for solubility constant is,

K_(sp)=[Sr^(2+)][SO^(2-)_4]

Now put the given values in this expression, we get

$2.8* 10^(-7)=(s)(s)\\2.8* 10^(-7)=s^2\\s=5.29* 10^(-4)=5.3* 10^(-4)moles/L$

Therefore, the solubility of
in moles/L is
.

Naresh J · Answer 2 · 2018-12-14T17:56:42+0000

Answer: The solubility of
is

Step-by-step explanation:

It is given that
K_(sp) of strontium sulfate is
2.8* 10^(-7)

The balanced equilibrium reaction for ionization of
is given by:

$SrSO_4\rightleftharpoons Sr^(2+)+SO^(2-)_4$

At equilibrium: s s

The equation to calculate solubility constant is given as:

K_(sp)=[Sr^(2+)][SO^(2-)_4]

Now put the given values in above equation, we get:

$2.8* 10^(-7)=(s)(s)\\2.8* 10^(-7)=s^2\\s=5.29* 10^(-4)\approx 5.3* 10^(-4)moles/L$

Therefore, the solubility of
is