x = 1 × 10−2.5Fifth, don’t worry about the fractional exponent
because it will disappear when you calculate pOH.pOH = −log [OH−]
= −log (1 × 10−2.5 M)
= 2.5Sixth, remember that pH + pOH = 14 (at 25°C), and
solve for pH.pH = 14 − pOH
= 14 − 2.5
= 11.5Na+ and NaOH
Na+(aq) can also be
thought of as Na(H 2 O)+,
or simply remember that
aqueous metal ions are the
conjugates of their metal
hydroxides.Conjugate Acid/Base Pairs
A conjugate pair of molecules refers to two molecules that have identical
molecular formulas except that one of them has an additional H+.
Some examples of conjugate pairs are
HCl and Cl−
H 2 O and OH−
H 2 PO 4 − and HPO 4 2−
Na+ and NaOHSome molecules/ions that are often mistaken for conjugate pairs are
H 3 O+/OH−, H 2 SO 4 /SO 4 2−, H 2 CO 3 /CO 3 2−