JKe dalam 300 gram air dilarutkan 10 gram glukosa (C6H12O6) dan 10 gram urea (CO(NH2)2). Jika Kb air = 0,52; titik didih larutan adalah... (Ar H=1, C=12, O=16, N=14) a. 0,385 b. 0,770 c. 1,54 d. 100,385 e. 100,77 dalam celcius
hakimium
#kasus campuran antara dua senyawa non elektrolit
Mr glukosa = 180, dan Mr urea = 60
mol glukosa = 10/180 = 1/18
mol urea = 10/60 = 1/6
kenaikan titik didih = [mol glukosa + mol urea] x [1000/massa air] x Kb
Mr glukosa = 180, dan Mr urea = 60
mol glukosa = 10/180 = 1/18
mol urea = 10/60 = 1/6
kenaikan titik didih = [mol glukosa + mol urea] x [1000/massa air] x Kb
Kb = 0,52
ΔTb = [(1/18) + (1/6)] x [1000/300] x 0,52
ΔTb = [2/9] x [10/3] x 0,52 = 0,385°C
∴ titik didih campuran = 100 + 0,385 = 100,385°C
____selesai____