If 5.3g O2 reacts with NH3 to produce 3.1g NO2, what would the percent yield of NO2 be?. . 4NH3(g) + 7O2(g) --> 4NO2 + 6H2O(g)

Molar mass

O2 = 16 x 2 = 32.0 g/mol NO2 = 14 + 16 x 2 = 46.0 g/mol

4 NH3 + 7 O2 = 4 NO2 + 6 H2O

7 x 32.0 g O2 -----------> 4 x 46.0 g NO2
5.3 g O2 -----------------> ( mass NO2)

mass NO2 = 5.3 x 4 x 46.0 / 7 x 32.0

mass NO2 = 975.2 / 224

= 4.3535 g of NO2

4.3535 g NO2 ----------- 100 %
3.1 g NO2 --------------- ( percent yield )

percent yield = 3.1 x 100 / 4.3535

percent yield = 310 / 4.3535

= 71.20%

hope this helps!

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Hussain514 Hussain514 · Answer 2 · 2016-08-04T18:40:56+02:00

Given equation is : 4 NH3 + 7 O2 = 4 NO2 + 6 H2O
where
5.3 g of 02 react with NH3 to produce 3.1 g NO2
To calculate % yield of NO2
First Find the Molar mass of O2 and NO2 as following

O2 = 16 x 2 = 32.0 g/mol NO2 = 14 + 16 x 2 = 46.0 g/mol

from equation above , we know that 7 oxygen molecules react to produce 2 molecules of NO2

7 x 32.0 g O2 -----------> 4 x 46.0 g NO2
5.3 g O2 +NH3 -----------------> ( mass NO2)

mass NO2 = 5.3 x 4 x 46.0 / 7 x 32.0

mass NO2 = 975.2 / 224

= 4.3535 g of NO2

4.3535 g NO2 ----------- 100 %
3.1 g NO2 --------------- ( percent yield )
Percent yield of NO2 can be calcuated by :

percent yield of NO2 = 3.1 x 100 / 4.3535

percent yield = 310 / 4.3535

Percent yield of NO2= 71.20%