Question

asked Jul 2, 2019 109k views

1 Answer

Korona · Answer 1 · 2019-07-07T14:54:37+0000

Answer:
[OH^(-)]= 0.01M or 1.0* 10^(-2)M

[H^(+)]= 1.0* 10^(-12)M

pH = 12

pOH = 2

Explanation: Calcium hydroxide (
Ca(OH)_(2) ) is a strong base that dissociates completely.

Dissociation equation of Calcium hydroxide is :

$Ca(OH)_(2) \rightarrow Ca^(+2) + 2OH^(-)$

1. Concentration of [OH-]

1 mol
Ca(OH)_(2) produces 2 mol OH- ions.

The given solution is 0.005M
Ca(OH)_(2) , then concentration of OH- would be twice the concentration of

[OH^(-)] = 0.005* 2 = 0.01M or
1.0* 10^(-2)M

2.Concentration of [H+]

Concentration of [H+] can be calculated by the formula:
[H^(+)] = (Kw)/([OH^(-)])

kw = ionic product of water and its values is
(1* 10^(-14))

[OH-] = 0.01 M or
1.0* 10^(-2)M

[H^(+)] = ((1* 10^(-14)))/([OH^(-)])

[H^(+)] = ((1* 10^(-14)))/([0.01])

[H^(+)] = 1.0* 10^(-12)M

3. pH value

pH is calculated by the formula :
pH = -log[H^(+)]

pH = -log[1.0* 10^(-12)]

pH = 12

4. pOH value

pOH is calculated by the formula : pOH = 14 - pH

pOH = 14 - 12

pOH = 2

pOH can also be calculated by using a different formula which is :

pOH = -log(OH^(-))

pOH = -log(0.01)

pOH = 2.

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