wiz-icon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

If the degree of dissociation of water at 70oC is 1.28×108. Then what is the ionic product of water at this temperature?

A
25×1016 M2
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
1.52×1014 M2
No worries! We‘ve got your back. Try BYJU‘S free classes today!
C
1.28×108 M2
No worries! We‘ve got your back. Try BYJU‘S free classes today!
D
5.1×1013 M2
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
Open in App
Solution

The correct option is D 5.1×1013 M2
Degree of dissociation of water α=1.28×108
and concentration of water is=100018=55.55 M

Equilibrium concentrations:
H2O (l) H+ (aq.) +OH (aq.)C(1α) Cα Cα

Dissociation constant,
Kc=[H+][OH][H2O]Kw=Kc×[H2O]=Cα×CαKw=C2α2Kw=(55.55)2×(1.28×108)2=5.1×1013
Ionic product, Kw=5.1×1013 M2

flag
Suggest Corrections
thumbs-up
0
Join BYJU'S Learning Program
Join BYJU'S Learning Program
CrossIcon