$H_2O_2$ acts as a reducing agent in

  • A
    $2 NaOCl + H_2O_2 \rightarrow 2 NaCl + H_2O + O_2$
  • B
    $2 Fe^{2+} + 2 H^{+} + H_2O_2 \rightarrow 2 Fe^{3+} + 2 H_2O$
  • C
    $Mn^{2+} + 2 H_2O_2 \rightarrow MnO_2 + 2 H_2O$
  • D
    $Na_2S + 4 H_2O_2 \rightarrow Na_2SO_4 + 4 H_2O$

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$A$ commercial sample of $H_2O_2$ marked as $100$ volume hydrogen peroxide means:

How many millilitres of $3 \% \left( \frac{w}{v} \right) H_2O_2$ solution is required to get $150 \ mL$ of oxygen at $STP$?

What is the amount of $H_2O_2$ in grams present in $1 \ L$ of $1.5 \ N$ $H_2O_2$ solution?

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In the reaction of $BaO_2$ with dilute $H_2SO_4$,what are the oxidation states of the most electronegative element in the products?

Which one of the following does $NOT$ readily give oxygen upon heating?

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