Question

The aqueous solution of 3 M sodium thiosulfate (Na2S203) has a density of 1.25 g / ml, multiply the molarity of Na2 and S203 ions in this solution.​

Answer 1

Answer:

Mass of 1000 mL of Na

2

S

2

O

3

solution = 1.25×1000=1250g

Mass of Na

2

S

2

O

3

in 1000 mL of 3 M solution

=3×MolmassofNa

2

S

2

O

3

=3×158=474g

Mass percentage of Na

2

S

2

O

3

in solution

=

1250

474

×100=37.92

Alternatively, M=

m

A

x×d×10

3=

158

x×1.25×10

x=37.92

(ii) No. of moles of Na

2

S

2

O

3

=

158

474

=3

Mass of water =(1250−474)=776g

No. of moles of water =

18

776

=43.1

Mole fraction of Na

2

S

2

O

3

=

43.1+3

3

=

46.1

3

=0.065

(iii) No. of moles of Na

+

ions

=2×No.ofmolesofNa

2

S

2

O

3

=2×3=6

Molality of Na

+

ions =

Massofwaterinkg

No.ofmolesofNa

+

ions

=

776

6

×1000

=7.73m

No. of moles of S

2

O

3

2−

ions = No. of mole of Na

2

S

2

O

3

=3

Molality of S

2

O

3

2−

ions =

776

3

×1000=3.86mNa2S2O3