Question #76fa4

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Question #76fa4

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Answer 1 · 2016-05-03T01:23:59

Nitrogen will be in a $+ 3$ $+3$ oxidation state.

Explanation:

The idea here is that you can use the number of moles of electrons lost by one mole of hydrazine, $N_{2} H_{4}$ $"N"_2"H"_4$ , to determine how many moles of electrons were lost by one mole of nitrogen.

Since hydrogen's oxidation state is said to remain unchanged, you can say for a fact that all the moles of electrons lost by hydrazine were actually lost by nitrogen.

Now, look at hydrazine's molecular formula, which contains

two atoms of nitrogen, $2 \times N$ $2 xx "N"$

four atoms of hydrogen, $4 \times H$ $4 xx "H"$

Notice that one mole of hydrazine contains two moles of nitrogen.

This of course means that when $1$ $1$ mole of hydrazine loses $10$ $10$ electrons, these electrons are actually coming from $2$ $2$ moles of nitrogen.

As a result, you can say that every mole of nitrogen present in one mole of hydrazine will lose $5$ $5$ moles of electrons.

If you take this down to the level of a single atom, you can say that one atom of nitrogen will lose $5$ $5$ electrons.

In hydrazine, hydrogen has a $+ 1$ $color(blue)(+1)$ oxidation state, which means that nitrogen has an oxidation state equal to

$2 \times O N_{N} + 4 \times O N_{H} = 0$ $2 xx ON_"N" + 4 xx ON_"H" = 0$

$2 \times O N_{N} = 0 - 4 \cdot (+ 1)$ $2 xx ON_"N" = 0 - 4 * (color(blue)(+1))$

${ON}_{N} = \frac{- 4}{2} = - 2$ $"ON"_N = (-4)/2 = -2$

Now, when each nitrogen atom loses $5$ $5$ electrons, its oxidation state increases by $5$ $5$ , i.e. it's being oxidized. You will have

$color(red)(|bar(ul(color(white)(a/a)color(black)(stackrel(color(blue)(-2))("N")_2"H"_4 -> 2stackrel(color(blue)(+3))("N") + 10"e"^(-))color(white)(a/a)|)))$

Here one atom of nitrogen loses $5$ electrons, so two atoms of nitrogen will lose $10$ electrons.

The oxidation state of nitrogen in this new compound $"Y"$ will thus be equal to $color(blue)(+3)$ .

Answer 2 · 2016-05-04T08:15:58

+3

Explanation:

Let ON of N in $N_2H_4$ be x. H ,being more electropositive than N ,it will have +1ON and species being a molecule total ON wil be zero.
So $2*x+4*(+1)=0=>x=-2$
By the problem
the oxidation process may be written as
$N_2H_4->Y("*")$
$"*molecule contains 2 N-atoms"$

One mole of $N_2H_4$ loses 10 moles of electrons to form a new compound Y
So One molecule of $N_2H_4$ loses 10 electrons to form one molecule of new compound Y which contains 2 N-atoms As there is no change of ON of H-atom , 2N-atoms of $N_2H_4$ loses 10 electrons causing total 10 unit increase in ON of 2 N-atoms .

Now if the ON of 2 N-atoms of Y be y then total increase in ON of N-atoms $=(2y-2*(-2)=2y+4)$
By the given condition of the problem , we have
$2y+4=10=>y=+3$

Hence the oxidation state of N in the compound Y is +3

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