18g glucose is added to178.2g water the vapuor pressure of water in(tor) for this aquos solution
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Heya!
Here is your answer!
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See the Molecular mass of water = 2×1 + 1×16 = 18 g right..
For 178.2 g water, na = 9.9
Molecular mass of glucose = 6×12 + 12×1 + 6×16 = 180 g
For 18 g glucose, nB = 0.1
XB = 0.1/(0.1+9.9) = 0.01
XA = 0.99
For lowering of vapour pressure,
P = p°AXA = p0A(1 – XB)
P = 760(1 – 0.01)
= 760 - 7.6
= 752.4 torr
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Hope it helped!
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