Sebanyak 5 gram glukosa dilarutkan ke dalam 180 gram air. Jika tekanan uap air murni tersebut 20 mmHg dan Mr glukosa = 180, tentukan penurunan tekanan uap tersebut!
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mol glukosa = massa/Mr = 5/180 = 1/36
mol air = 180/18 = 10
fraksi mol pelarut air Xp = mol air / [mol air + mol glukosa]
Xp = [10] / [(1/36) + 10]
Xp = 360 / [1 + 360] = 360/361
fraksi mol zat terlarut glukosa Xt = 1 - Xp = 1/361
tekanan uap jenuh pelarut p₀ = 20 mmHg
penurunan tekanan uap jenuh larutan Δp = p₀ . Xt
Δp = (20)(1/361)
jadi besar penurunan tekanan uap jenuh larutan glukosa tersebut adalah 0,055 mmHg
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