What is the cofficient of Cr^2+?

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What is the cofficient of Cr^2+?

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Answer 1 · 2018-04-11T05:56:14

$2 C r^{2 +}$ $2Cr^(2+)$

Explanation:

Start by finding what has been oxidized and what has bee reduced by inspecting the oxidation numbers:

In this case:
$C r^{2 +} (a q) \to C r^{3 +} (a q)$ $Cr^(2+)(aq) -> Cr^(3+)(aq)$
Is the oxidation
and
$S O_{4}^{2 -} (a q) \to H_{2} S O_{3} (a q)$ $SO_4^(2-)(aq) -> H_2SO_3(aq)$
is the reduction
Start by balancing the half equations for oxygen by adding water:

$S O_{4}^{2 -} (a q) \to H_{2} S O_{3} (a q) + H_{2} O (l)$ $SO_4^(2-)(aq) -> H_2SO_3(aq) + H_2O(l)$
(Only the reduction includes oxygen)

Now balance hydrogen by adding protons:

$4 H^{+} (a q) + S O_{4}^{2 -} (a q) \to H_{2} S O_{3} (a q) + H_{2} O (l)$ $4H^(+)(aq)+SO_4^(2-)(aq) ->H_2SO_3(aq) + H_2O(l)$
(again, only the reduction involves hydrogen)

Now balance each half-equation for charge by adding electrons to the more positive side:
$C r^{2 +} \to C r^{3 +} + e^{-}$ $Cr^(2+) -> Cr^(3+) + e^-$

$4 H^{+} + S O_{4}^{2 -} (a q) + 2 e^{- \to} H_{2} S O_{3} (a q) + H_{2} O (l)$ $4H^(+)+SO_4^(2-)(aq)+2e^- -> H_2SO_3(aq) + H_2O(l)$

And to equalize the electrons, multiply the whole half equation with the least electrons by an integer to equal the other half-equation in the number of electrons, thereby balancing the electrons on both sides of the equation:

$2 C r^{2 +} \to 2 C r^{3 +} + 2 e^{-}$ $2Cr^(2+) -> 2Cr^(3+) + 2e^-$

Now combine everything and remove the electrons (as they in equal amounts on both sides they can be canceled in this step - otherwise just simplify as far as possible)

$4 H^{+} (a q) + S O_{4}^{2 -} (a q) + 2 C r^{2 +} (a q) \to 2 C r^{3 +} (a q) + H_{2} S O_{3} (a q) + H_{2} O (l)$ $4H^(+)(aq)+SO_4^(2-)(aq)+2Cr^(2+)(aq) -> 2Cr^(3+)(aq)+H_2SO_3(aq) + H_2O(l)$

Now the equation is balanced and we can see that the coefficient to $C r^{2 +}$ $Cr^(2+)$ is 2.

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What is the cofficient of Cr^2+?

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