Question

(1) what is the ph of a 0.015 m aqueous solution of barium hydroxide (ba(oh)2)?

a.12.25
b.1.82
c.12.48
d.1.52
e.10.41

Answer 1

According to the reaction equation:

Ba(OH)2 ↔ Ba2+ + 2OH-
when 0.015 M 0.015M 2*0.015M

∴ [OH-] = 0.03 m

so we can get the POH = - ㏒ [OH-]

by substitution:

∴ POH = -㏒ 0.03

= 1.52

and then we can get the PH from this formula:

PH + POH = 14

so by substitution:

∴PH = 14 - 1.52

≈ 12.48