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ikadub [295]
1 year ago
8

Calculate the percent ionization of formic acid in a solution that is 0. 010 m hcooh and 0. 050 m HCOONa. (ka = 1. 7 × 10^–4).

Chemistry
1 answer:
andrey2020 [161]1 year ago
3 0

The percent ionization of formic acid is 0.34%.

Calculating the percent ionization of formic acid:

The equation for a chemical equilibrium:

The crucial step is only formic acid's ionization.

HCOOH(aq) ⇄ HCOO⁻(aq) + H⁺(aq)

Next, we have to calculate the mass balance:
                      HCOOH(aq)                 HCOO⁻(aq)         H⁺(aq)

Initial point     0.01                                 0.05                            

Reaction          -x                                   +x                          +x

Final               0.01 - x                           0.05+x                     x

Acid constant equation:

Kₐ = [HCOO⁻] [N+] / [HCOOH⁻]

⇒Kₐ = (0.05+x)x / ((0.01 - x)

Now we have to solve the equation:

It is precisely solvable by us (we may utilize the quadratic formula since it will result in a quadratic equation.). Consider using the fact that x is significantly smaller than 0.01 and 0.05.

The approximate solution to the equation is:

0.05x / 0.01 = 0.00017

x = 0.00017 * 0.01 / 0.05

x = 3.4 * 10⁻⁵ M

Using the value, the percent of ionization (α) is:

percent of ionization = (moles ionized / initial moles) *100

percent of ionization = (concentration of ions / initial concentration) *100

percent of ionization = (3.4 * 10⁻⁵ /0.01) *100

percent of ionization = 0.34

Learn more about the percent of ionization here:

brainly.com/question/14225136

#SPJ4

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