The density of `3 M` sodium of thiosulphate solution `(Na_(2)S_(2)O_(3))` is `1.25 g mL^(-1)`. Calculate a. The precentage by weight of sodium thiosulphate. b. The mole fraction of sodium thiosulphate. c. The molalities of `Na^(o+)` and `S_(2)O_(3)^(2-)` ions.

The density of `3 M` sodium of thiosulphate solution `(Na_(2)S_(2)O_(3

1.	The density of `3 M` sodium of thiosulphate solution `(Na_(2)S_(2)O_(3))` is `1.25 g mL^(-1)`. Calculate a. The precentage by weight of sodium thiosulphate. b. The mole fraction of sodium thiosulphate. c. The molalities of `Na^(o+)` and `S_(2)O_(3)^(2-)` ions.
Answer» (i) Mass of 1000 mL of `Na_(2)S_(2)O_(3)` solution `=1.25 xx 1000 = 1250 g` Mass of `Na_(2)S_(2)O_(3)` in 1000 mL of 3M solution `= 3 xx` Mol. Mass of `Na_(2)S_(2)O_(3)` `= 3xx 158 = 474g` Mass percentage of `Na_(2)S_(2)O_(3)` in solution `= (474)/(1250)xx100=37.92` Alternatively, `M=(x xxd xx10)/(m_(A))` `3=(x xx1.25xx10)/(158)` `x = 37.92` (ii) No. of moles of `Na_(2)S_(2)O_(3)=(474)/(158)=3` Mass of water `=(1250-474)=776g` No. of moles of water `= (776)/(18)=43.1` Mole fraxtion of `Na_(2)S_(2)O_(3)=(3)/(43.1+3)=(3)/(46.1)=0.065` (iii) No. of moles of `Na^(+)` ions `=2xx` No. of moles of `Na_(2)S_(2)O_(3)` `= 2xx 3=6` Molality of `Na^(+)` ion `= ("No. of moles of "Na^(+)"ions")/("Mass of water in kg")` `=(6)/(776)xx1000` `=7.73m` No. of moles of `S_(2)O_(3)^(2-)` ions = No. of moles of `Na_(2)S_(2)O_(3)` `=3` Molality of `S_(2)O_(3)^(2-)` ions `= (3)/(776) xx 1000 = 3.86 m`.

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