The correct option is B 1.2×10−9g
Given, Ksp(AgBr)=5.0×10−13, [Ag+]=0.05 M.
Molar mass of KBr = 120 gmol−1
Ag+(aq)+Br−(aq)⇌AgBr(s)
Precipitation starts when ionic product just exceeds solubility product.
Ksp=[Ag+][Br−]
putting the values,
⇒[Br−]=Ksp[Ag+]=5×10−130.05=10−11
Precipitation starts when 10−11 moles of KBr is added to 1L of AgNO3 solution.
Number of moles of KBr to be added =10−11
Weight of KBr=number of moles×molar mass
putting the values,
=10−11×120=1.2×10−9g