The correct options are
B [Ca2+]=[CO2−3]=10−5 M
C [Ca2+]=[CO2−3]=10−6 M
D [Ca2+]=[CO2−3]=10−7 M
Given, CaCO3 (Ksp=3.8×10−9)
For precipitation , to occur the ionic product should exceed solubility product
Qsp>Ksp
The equilibrium between undissociated solid and its ions can be represented as:
CaCO3 (s)⇌Ca2+ (aq)+CO2−3 (aq)
Qsp=[Ca2+][CO2−3]
Option A:
Qsp=10−4×10−4Qsp=10−8
Since, Qsp>Ksp, precipitation occurs.
Option B:
Qsp=10−5×10−5Qsp=10−10
Since, Qsp<Ksp, precipitation does not occur.
Option C:
Qsp=10−6×10−6Qsp=10−12
Since, Qsp<Ksp, precipitation does not occur.
Option D:
Qsp=10−7×10−7Qsp=10−14
Since, Qsp<Ksp, precipitation does not occur.
Option B,C,D are correct.