Question #156ba
1 Answer
pH = 5.13
Explanation:
We will use the
Find the equilibrium concentrations of the
-
#(0.010" L") * (1.0" M") = 0.01" moles"# -
#(0.01" moles")/(0.034" L") = 0.29" M"#
-
#(0.024" L") * (1.0" M") = 0.024" moles"# -
#(0.024" moles")/(0.034" L") =0.71" M"#
Look up the
(source:preparatorychemistry.com/Bishop_weak_acid_Equilibrium.htm)
To find the
#pKa = -log(1.8*10^-5)# #pKa = 4.74#
Plugin and solve
-
#pH = pKa + log[("conjugate base")/("acid")]# -
#pH = 4.74 + log[(0.71 cancelM)/(0.29 cancelM")]# -
#pH = 4.74 + log[2.45]# -
#pH = 4.74 + 0.39# -
#pH = 5.13#
You can check your answer by seeing that you clearly have more than