In Duma’s method 0.52 g of an organic compound on combustion gave 68.6 mL N2 at 27 °C and 756 mm pressure. What is the percentage of nitrogen in the compound?

Question

In Duma’s method 0.52 g of an organic compound on combustion gave 68.6 mL N2 at 27 °C and 756 mm pressure. What is the percentage of nitrogen in the compound? (A) 12.22 % (B) 14.93 % (C) 15.84 % (D) 16.23 %

Tardigrade Admin · Accepted Answer

V1=68.6 mL, P1=756 mm, T1=300 K V2= ?, p2=760 mm, T2=273 K (P1V1/T1)=(P 2V2/T2) At NTP, vol. of N2 , V2 =(P1V1/T1)⋅(T2/P2)=(756×68.6/300)×(273/760) =62.09 mL Percentage of nitrogen in organic compound =(28/22400)×(V2/w)×100 =(28/22400)×(62.09/0.52)×100 =14.93 %

Q. In Duma’s method $0.52 g$ of an organic compound on combustion gave $68.6$ mL $N_{2}$ at $2 7^{\circ} C$ and $756$ mm pressure. What is the percentage of nitrogen in the compound?

$12.22%$

$14.93%$

$15.84%$

$16.23%$

Q. In Duma’s method 0.52g of an organic compound on combustion gave 68.6 mL N2​ at 27∘C and 756 mm pressure. What is the percentage of nitrogen in the compound?

12.22%

14.93%

15.84%

16.23%

Q. In Duma’s method $0.52 g$ of an organic compound on combustion gave $68.6$ mL $N_{2}$ at $2 7^{\circ} C$ and $756$ mm pressure. What is the percentage of nitrogen in the compound?

$12.22%$

$14.93%$

$15.84%$

$16.23%$