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ΔH = [(4 × C-H) + ( 2 × O=O)] - [(2 × C=O) + (4 × O-H)]
- 18 = [(4 × C-H) + ( 2 × 119)] - [(2 × 173) + (4 × 110)]
C-H = 132,5 kkal
jawaban: A
20. C6H12O6 + 6 O2 → 6 CO2 + 6 H2O
ΔH = [( 6 × ΔH CO2) + (6 × ΔH H2O)] - [ΔH C6H12O6 + (6 × ΔH O2)]
= [( 6 × -394) + (6 × - 286)] - [-1268 + (6 × 0)] = - 2812 ⇒ untuk 1 mol glukosa
mol glukosa =45 ÷ 180 = 0,25
maka untuk 0,25 mol, ΔH adalah -2812 × 0,25 = - 703 kJ