Man löser 4,8 g av ammoniumklorid, NH₄Cl, i så mycket vatten att lösningens volym blir 150 cm³. Kᵦ = 5,7 × 10⁻¹⁰ mol/dm³. a) Skriv formeln som visar den huvudsakliga protolysjämvikten. b) Vilket pH har vattenlösningen av ammoniumklorid?

Answer

pH Calculation of NH₄Cl Solution

🧪 pH Calculation of NH₄Cl Solution

1. Given Information

  • Mass of NH₄Cl: 4.8 g
  • Volume of solution: 150 mL = 0.150 L
  • Molar mass of NH₄Cl: 53.5 g/mol
  • Ka of NH₄⁺: 5.7 × 10⁻¹⁰

2. Step-by-Step Solution

Step 1: Calculate Moles of NH₄Cl

n = mass / molar mass = 4.8 g / 53.5 g/mol ≈ 0.0897 mol

Step 2: Calculate Concentration of NH₄⁺

[NH₄⁺] = moles / volume = 0.0897 mol / 0.150 L ≈ 0.598 M

Step 3: Write the Equilibrium Reaction

NH₄⁺ + H₂O ⇌ NH₃ + H₃O⁺

Using Ka expression:

Ka = [NH₃][H₃O⁺] / [NH₄⁺] = x² / 0.598
x² = (5.7 × 10⁻¹⁰)(0.598) = 3.42 × 10⁻¹⁰
x = √(3.42 × 10⁻¹⁰) ≈ 1.85 × 10⁻⁵ M

Step 4: Calculate pH

pH = −log(1.85 × 10⁻⁵) ≈ 4.73

✅ Final Answer

The pH of the NH₄Cl solution is approximately 4.73.

This indicates a slightly acidic solution, which is expected from the hydrolysis of the ammonium ion (NH₄⁺).

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