Consider the reactions:
$2S_2O_3^{2-}(aq) + I_2(s) \to S_4O_6^{2-}(aq) + 2I^-(aq)$
$S_2O_3^{2-}(aq) + 2Br_2(l) + 5H_2O(l) \to 2SO_4^{2-}(aq) + 4Br^-(aq) + 10H^+(aq)$
Why does the same reductant,thiosulphate,react differently with iodine and bromine?
$2S_2O_3^{2-}(aq) + I_2(s) \to S_4O_6^{2-}(aq) + 2I^-(aq)$
$S_2O_3^{2-}(aq) + 2Br_2(l) + 5H_2O(l) \to 2SO_4^{2-}(aq) + 4Br^-(aq) + 10H^+(aq)$
Why does the same reductant,thiosulphate,react differently with iodine and bromine?
(N/A) In $S_2O_3^{2-}$,the average oxidation number of $S$ is $+2$. In $S_4O_6^{2-}$,the average oxidation number of $S$ is $+2.5$. In $SO_4^{2-}$,the oxidation number of $S$ is $+6$.
$Br_2$ is a stronger oxidizing agent than $I_2$. Therefore,$Br_2$ is capable of oxidizing $S_2O_3^{2-}$ (where $S$ is $+2$) to $SO_4^{2-}$ (where $S$ is $+6$).
$I_2$ is a weaker oxidizing agent. Therefore,it only oxidizes $S_2O_3^{2-}$ $(S=+2)$ to $S_4O_6^{2-}$ $(S=+2.5)$.
Thus,the difference in the oxidizing strength of the halogens leads to different products.
$Br_2$ is a stronger oxidizing agent than $I_2$. Therefore,$Br_2$ is capable of oxidizing $S_2O_3^{2-}$ (where $S$ is $+2$) to $SO_4^{2-}$ (where $S$ is $+6$).
$I_2$ is a weaker oxidizing agent. Therefore,it only oxidizes $S_2O_3^{2-}$ $(S=+2)$ to $S_4O_6^{2-}$ $(S=+2.5)$.
Thus,the difference in the oxidizing strength of the halogens leads to different products.
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Similar Questions
The unbalanced chemical reactions given in List-$I$ show missing reagent or condition $(?)$ which are provided in List-$II$. Match List-$I$ with List-$II$ and select the correct answer using the code given below the lists:
List-$I$ List-$II$ $P. \ PbO_2 + H_2SO_4 \xrightarrow{?} PbSO_4 + O_2 + \text{other product}$ $1. \ NO$ $Q. \ Na_2S_2O_3 + H_2O \xrightarrow{?} NaHSO_4 + \text{other product}$ $2. \ I_2$ $R. \ N_2H_4 \xrightarrow{?} N_2 + \text{other product}$ $3. \ \text{Warm}$ $S. \ XeF_2 \xrightarrow{?} Xe + \text{other product}$ $4. \ Cl_2$
Codes: $P \quad Q \quad R \quad S$
| List-$I$ | List-$II$ |
| $P. \ PbO_2 + H_2SO_4 \xrightarrow{?} PbSO_4 + O_2 + \text{other product}$ | $1. \ NO$ |
| $Q. \ Na_2S_2O_3 + H_2O \xrightarrow{?} NaHSO_4 + \text{other product}$ | $2. \ I_2$ |
| $R. \ N_2H_4 \xrightarrow{?} N_2 + \text{other product}$ | $3. \ \text{Warm}$ |
| $S. \ XeF_2 \xrightarrow{?} Xe + \text{other product}$ | $4. \ Cl_2$ |
Codes: $P \quad Q \quad R \quad S$
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