buffTi32

Buffers And Acid-Base Titrations

32) [NH₃] = 0.030 M [HCl] = 0.025 M

V_NH3 = 30.0 mL K_b(NH₃) = 1.8 x 10^-5

NH₃(aq) + H₂O(l) NH₄⁺(aq) + OH^-(aq)

HCl(aq) H⁺(aq) + Cl^-(aq)

[NH₃] = n/V

n_NH3 = 0.030 mol NH₃/L x 30.0 mL x 1 L/10³ mL = 9.0 x 10^-4 mol NH₃

(a) V_HCl = 0 mL

NH₃(aq) + H₂O(l) NH₄⁺(aq) + OH^-(aq)

[ ]_i 0.030 0 0

[ ]_c -x +x +x

[ ]_e 0.030-x x x

K_b = [NH₄⁺] x [OH^-]/[NH₃]

1.8 x 10^-5 = x • x/(0.030 - x) ≈ x²/0.030

[OH^-] = 7.3 x 10^-4 M

pOH = -log[OH^-] = -log(7.3 x 10^-4) = 3.14

pH + pOH = 14.00

pH = 14.00 - 3.14 = 10.86

(b) V_HCl = 10.0 mL

n_H+ = 0.025 ~~mol HCl~~/L x 1 mol H⁺/1 ~~mol HCl~~ x 10.0 mL x 1 L/10³ mL = 2.5 x 10^-4 mol H⁺

H⁺(aq) + NH₃(aq) NH₄⁺(aq)

n_b 2.5 x 10^-4 mol 9.0 x 10^-4 mol 0

n_a 0 6.5 x 10^-4 mol 2.5 x 10^-4 mol

[NH₃] = (6.5 x 10^-4 mol NH₃)/(40.0 mL x 1 L/10³ mL) = 0.016 M

[NH₄⁺] = (2.5 x 10^-4 mol NH₄⁺)/(40.0 mL x 1 L/10³ mL) = 0.0062 M

NH₃(aq) + H₂O(l) NH₄⁺(aq) + OH^-(aq)

[ ]_i 0.016 0.0062 0

[ ]_c -x +x +x

[ ]_e 0.016-x 0.0062+x x

K_b = [NH₄⁺] x [OH^-]/[NH₃]

1.8 x 10^-5 = (0.0062 + x) • x/(0.016 - x) ≈ 0.0062x/0.016

[OH^-] = 4.6 x 10^-5 M

pOH = -log[OH^-] = -log(4.6 x 10^-5) = 4.34

pH + pOH = 14.00

pH = 14.00 - 4.34 = 9.66

(c) V_HCl = 20.0 mL

n_H+ = 0.025 ~~mol HCl~~/L x 1 mol H⁺/1 ~~mol HCl~~ x 20.0 mL x 1 L/10³ mL = 5.0 x 10^-4 mol H⁺

H⁺(aq) + NH₃(aq) NH₄⁺(aq)

n_b 5.0 x 10^-4 mol 9.0 x 10^-4 mol 0

n_a 0 4.0 x 10^-4 mol 5.0 x 10^-4 mol

[NH₃] = (4.0 x 10^-4 mol NH₃)/(50.0 mL x 1 L/10³ mL) = 0.0080 M

[NH₄⁺] = (5.0 x 10^-4 mol NH₄⁺)/(50.0 mL x 1 L/10³ mL) = 0.010 M

NH₃(aq) + H₂O(l) NH₄⁺(aq) + OH^-(aq)

[ ]_i 0.0080 0.010 0

[ ]_c -x +x +x

[ ]_e 0.0080-x 0.010+x x

K_b = [NH₄⁺] x [OH^-]/[NH₃]

1.8 x 10^-5 = (0.010 + x) • x/(0.0080 - x) ≈ 0.010x/0.0080

[OH^-] = 1.4 x 10^-5 M

pOH = -log[OH^-] = -log(1.4 x 10^-5) = 4.85

pH + pOH = 14.00

pH = 14.00 - 4.85 = 9.15

(d) V_HCl = 35.0 mL

n_H+ = 0.025 ~~mol HCl~~/L x 1 mol H⁺/1 ~~mol HCl~~ x 35.0 mL x 1 L/10³ mL = 8.8 x 10^-4 mol H⁺

H⁺(aq) + NH₃(aq) NH₄⁺(aq)

n_b 8.8 x 10^-4 mol 9.0 x 10^-4 mol 0

n_a 0 2.0 x 10^-5 mol 8.8 x 10^-4 mol

[NH₃] = (2.0 x 10^-5 mol NH₃)/(65.0 mL x 1 L/10³ mL) = 3.1 x 10^-4 M

[NH₄⁺] = (8.8 x 10^-4 mol NH₄⁺)/(65.0 mL x 1 L/10³ mL) = 0.014 M

NH₃(aq) + H₂O(l) NH₄⁺(aq) + OH^-(aq)

[ ]_i 3.1 x 10^-4 0.014 0

[ ]_c -x +x +x

[ ]_e 3.1 x 10^-4-x 0.014+x x

K_b = [NH₄⁺] x [OH^-]/[NH₃]

1.8 x 10^-5 = (0.014 + x) • x/(3.1 x 10^-4 - x) ≈ 0.014x/(3.1 x 10^-4)

[OH^-] = 4.0 x 10^-7 M

pOH = -log[OH^-] = -log(4.0 x 10^-7) = 6.40

pH + pOH = 14.00

pH = 14.00 - 6.40 = 7.60

(e) V_HCl = 36.0 mL

n_H+ = 0.025 ~~mol HCl~~/L x 1 mol H⁺/1 ~~mol HCl~~ x 36.0 mL x 1 L/10³ mL = 9.0 x 10^-4 mol H⁺

H⁺(aq) + NH₃(aq) NH₄⁺(aq)

n_b 9.0 x 10^-4 mol 9.0 x 10^-4 mol 0

n_a 0 0 9.0 x 10^-4 mol

[NH₄⁺] = (9.0 x 10^-4 mol NH₄⁺)/(66.0 mL x 1 L/10³ mL) = 0.014 M

NH₄⁺(aq) H⁺(aq) + NH₃(aq)

[ ]_i 0.014 0 0

[ ]_c -x +x +x

[ ]_e 0.014-x x x

K_w = K_a x K_b = 1.00 x 10^-14

K_a = (1.00 x 10^-14)/(1.8 x 10^-5) = 5.6 x 10^-10

K_a = [H⁺] x [NH₃]/[NH₄⁺]

5.6 x 10^-10 = x • x/(0.014-x) ≈ x²/0.014

[H⁺] = 2.8 x 10^-6 M

pH = -log[H⁺] = -log(2.8 x 10^-6) = 5.55

(f) V_HCl = 37.0 mL

n_H+ = 0.025 ~~mol HCl~~/L x 1 mol H⁺/1 ~~mol HCl~~ x 37.0 mL x 1 L/10³ mL = 9.2 x 10^-4 mol H⁺

H⁺(aq) + NH₃(aq) NH₄⁺(aq)

n_b 9.2 x 10^-4 mol 9.0 x 10^-4 mol 0

n_a 2.0 x 10^-5 mol 0 9.0 x 10^-4 mol

[H⁺] = 2.0 x 10^-5 mol H⁺/(67.0 mL x 1 L/10³ mL) = 3.0 x 10^-4 M

pH = -log[H⁺] = -log(3.0 x 10^-4) = 3.52