How do you balance NH3 + O2--> NO2 + H2O? The number in the parenthasis are subscribts, thank you all so much!!!?

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How do you balance NH3 + O2--> NO2 + H2O? The number in the parenthasis are subscribts, thank you all so much!!!?

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Answer 1 · 2015-10-23T14:42:31

$4 N H_{3} + 7 O_{2} \to 4 N O_{2} + 6 H_{2} O$ $4NH_3 + 7O_2 -> 4NO_2 + 6H_2O$

Explanation:

There is no fixed method actually. You have to take a random number as the number of molecules for $N H_{3}$ $NH_3$ , then calculate result.

As for here, I have taken $4$ $4$ as the number of molecules of $N H_{3}$ $NH_3$ . That means $4$ $4$ nitrogen atoms and $12$ $12$ hydrogen atoms are taking part in this reaction.

Now, hydrogen atoms are present only in $H_{2} O$ $H_2O$ as a product in this reaction. So that makes $6$ $6$ molecules of $H_{2} O$ $H_2O$ (as there are $12$ $12$ hydrogen atoms).

Now, when we calculated the number of molecules of $H_{2} O$ $H_2O$ , we also got the number of oxygen atoms present there.

On the other hand, as there are $4$ $4$ molecules of $N H_{3}$ $NH_3$ , there has to be $4$ $4$ molecules of $N O_{2}$ $NO_2$ as well to balance the number of nitrogen atoms in both side of the reaction.

That makes $8$ $8$ another atoms of oxygen.

So now the total number of oxygen atoms is $(8 + 6)$ $(8+6)$ or $14$ $14$ , which means $14$ $14$ atoms or $7$ $7$ molecules of oxygen.

So the final balanced reaction is :

$4 N H_{3} + 7 O_{2} \to 4 N O_{2} + 6 H_{2} O$ $4NH_3 + 7O_2 -> 4NO_2 + 6H_2O$

Answer 2 · 2015-10-24T12:24:13

Two possible answers: (1) $2 N H_{3}$ $2NH_3$ + $\frac{7}{2} O_{2}$ $7/2O_2$ = $2 N O_{2}$ $2NO_2$ + $3 H_{2} O$ $3H_2O$ or (2) $4 N H_{3}$ $4NH_3$ + $7 O_{2}$ $7O_2$ = $4 N O_{2}$ $4NO_2$ + $6 H_{2} O$ $6H_2O$

Explanation:

First, you need to tally all the atoms.

$N H_{3}$ $NH_3$ + $O_{2}$ $O_2$ = $N O_{2}$ $NO_2$ + $H_{2} O$ $H_2O$

Left side:
N = 1
H = 3
O = 2

Right side:
N = 1
H = 2
O = 2 + 1 (two from the $N O_{2}$ $NO_2$ and one from $H_{2} O$ $H_2O$ ; DO NOT ADD IT UP YET )

You always have to find the simplest element that you can balance (in this case, the H).

Left side:
N = 1 x 2 = 2
H = 3 x 2 = 6
O = 2

Right side:
N = 1
H = 2 x 3 = 6
O = 2 + (1 x 3) from the O in $H_{2} O$ $H_2O$

Notice that with balancing the atoms, you do not forget that they are part of a substance - meaning, you have to multiply everything.

$2 N H_{3}$ $2NH_3$ + $O_{2}$ $O_2$ = $N O_{2}$ $NO_2$ + $3 H_{2} O$ $3H_2O$

Now, the N is not balanced so you need to multiply the right side N by 2.

Left side:
N = 1 x 2 = 2
H = 3 x 2 = 6
O = 2

Right side:
N = 1 x 2 = 2
H = 2 x 3 = 6
O = (2 x 2) + (1 x 3) = 7

$2 N H_{3}$ $2NH_3$ + $O_{2}$ $O_2$ = $2 N O_{2}$ $2NO_2$ + $3 H_{2} O$ $3H_2O$

Now, the only element left to be balanced is O. Since 7 is an odd number, you can use a fraction for the equation to be in its reduced form.

Left side:
N = 1 x 2 = 2
H = 3 x 2 = 6
O = 2 x 3.5 = 7 (the decimal 3.5 can be written as $\frac{7}{2}$ $7/2$ )

Right side:
N = 1 x 2 = 2
H = 2 x 3 = 6
O = (2 x 2) + (1 x 3) = 7

Hence,

$2 N H_{3}$ $2NH_3$ + $\frac{7}{2} O_{2}$ $7/2O_2$ = $2 N O_{2}$ $2NO_2$ + $3 H_{2} O$ $3H_2O$

but if you want the equation to show whole numbers only, you can always multiply everything by the denominator in the fraction.

$(cancel 2)$ [ $2NH_3$ + $7/(cancel 2)O_2$ = $2NO_2$ + $3H_2O$ ]

=

$4NH_3$ + $7O_2$ = $4NO_2$ + $6H_2O$

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