Kalorimeter kelas 11
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mol Mg = gr ÷ Mr
= 3 ÷ 24
= 0,125
mol Mg3N2 = 1/3 mol Mg = 1/3 × 0,125 =0,04167
ΔH = - (Q ÷ mol)
= - (28 ÷ 0,04167)
= - 671,5
2. 2 H - O - H → 2 H - H + O = O
ΔH = ∑I reaktan - ∑I produk
= [2 ( 2 O-H)] - [2 H-H + O=O]
= [4 × 464] - [(2 × 436) + 500]
= 484 kJ ⇒ untuk 2 mol air
mol air = gr ÷ Mr
= 9 ÷ 18
= 0,5
maka ΔH untuk 0,5 mol ⇒ 0,5/2 × 484 = 121 kJ