contestada

how many grams of sodium azide are required to form 16.55g of nitrogen gas in
2
N
a
N
3
(
s
)

2
N
a
(
s
)
+
3
N
2
(
g
)
?

Respuesta :

chepkiruikirui1

Answer:

16.8128 grams of sodium azide is needed

Explanation:

2NaN3 = 2Na + 3N2

molar mass of NaN3 =

[tex]2(11 + (7 \times 3) = 64[/tex]

molar mass of N2

[tex]3(7 \times 2) = 42[/tex]

moles of N2 =

moles=mass/R.F.M

16.55÷42 = 0.3940

mole ratio=

2NaN3 : 3N2

3 = 0.3940

2=?

[tex]0.394. \times 2 \div 3 = 0.2627[/tex]

Mass of sodium azide =64×0.2627

=16.8126

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