relative lowering of vp is 1/6 of nacl. what is tha no of moles of nacl is present in 180 gm of H2O
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it's really nice question. here you should use two concepts lowering of vapor pressure and Van't Hoff's concept.
i.e., lowering of vapor pressure = mole fraction of solute
= i n/(in + iN)
where i is Van't Hoff's factor, n is number of mole of solute and N is number of mole of solvent .
given, mass of solvent = 180gm
molar mass of solvent = 18g/mol [as solvent is water ]
so, N = 180/18 = 10
Van't Hoff's factor , i = 2 [ NaCl dissociates into two ions ]
now, 0.167 = 2n/(2n + 10)
or, 0.167(2n + 10) = 2n
or, 0.334n + 1.67 = 2n
or, (2 - 0.334)n = 1.67
or, n = 1.67/(1.666) ≈ 1 mol
hence, answer is 1 mol
Explanation:
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