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Identify the redox reactions out of the following reactions and identify the oxidising and reducing agents in them. FeX2OX3(s)+3CO(g)→Δ2Fe(s)+3COX2(g) - Chemistry

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प्रश्न

Identify the redox reactions out of the following reactions and identify the oxidising and reducing agents in them.

\[\ce{Fe2O3 (s) + 3CO (g) ->[Δ] 2Fe (s) + 3CO2 (g)}\]

टिप्पणी लिखिए

उत्तर

\[\ce{F\overset{+3}{e2}\overset{-2}{O3} (s) + 3\overset{+2}{C}\overset{-2}{O (g)} ->[Δ] \overset{0}{2F}e (s) + \overset{+4}{3C}\overset{-2}{O2} (g)}\]

Here, O.N. of \[\ce{Fe}\] decreases from +3 (in \[\ce{Fe2O3}\]) to 0 (in \[\ce{Fe}\]) and therefore, \[\ce{Fe2O3}\] acts as an oxidizing agent.

O.N. of \[\ce{C}\] increases from +2 (in \[\ce{CO}\]) to +4 (in \[\ce{CO2}\]) and therefore, \[\ce{CO}\] acts as a reducing agent. Thus, this is a redox reaction.

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Balancing Redox Reactions in Terms of Loss and Gain of Electrons
  क्या इस प्रश्न या उत्तर में कोई त्रुटि है?
अध्याय 8: Redox Reactions - Multiple Choice Questions (Type - I) [पृष्ठ १०८]

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एनसीईआरटी एक्झांप्लर Chemistry [English] Class 11
अध्याय 8 Redox Reactions
Multiple Choice Questions (Type - I) | Q 25.(iii) | पृष्ठ १०८

संबंधित प्रश्न

Consider the reaction:

\[\ce{O3(g) + H2O2(l) → H2O(l) + 2O2(g)}\]

Why it is more appropriate to write these reaction as:

\[\ce{O3(g) + H2O2 (l) → H2O(l) + O2(g) + O2(g)}\]

Also, suggest a technique to investigate the path of the redox reactions.


Justify that the following reaction is redox reaction; identify the species oxidized/reduced, which acts as an oxidant and which acts as a reductant.

\[\ce{2Cu2O_{(S)} + Cu2S_{(S)}->6Cu_{(S)} + SO2_{(g)}}\]


Balance the following reaction by oxidation number method.

\[\ce{H2SO4_{(aq)} + C_{(s)}->CO2_{(g)}  + SO2_{(g)} + H2O_{(l)}(acidic)}\]


Write balanced chemical equation for the following reactions:

Permanganate ion \[\ce{(MnO^{-}4)}\] reacts with sulphur dioxide gas in acidic medium to produce \[\ce{Mn^{2+}}\] and hydrogen sulphate ion.


Balance the following equations by the oxidation number method.

\[\ce{MnO2 + C2O^{2-}4 -> Mn^{2+} + CO2}\]


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\[\ce{3HCl (aq) + HNO3 (aq) -> Cl2 (g) + NOCl (g) + 2H2O (l)}\]


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\[\ce{HgCl2 (aq) + 2KI (aq) -> HgI2 (s) + 2KCl (aq)}\]


Balance the following ionic equations.

\[\ce{MnO^{-}4 + H^{+} + Br^{-} -> Mn^{2+} + Br2 + H2O}\]


The weight of CO is required to form Re2(CO)10 will be ______ g, from 2.50 g of Re2O7 according to given reaction

\[\ce{Re2O7 + CO -> Re2(CO)10 + CO2}\]

Atomic weight of Re = 186.2; C = 12 and O = 16.


\[\ce{H2O2 -> 2H^+ + O2 + 2e^-}\]; E0 = −0.68 V.

This equation represents which of the following behaviour of H2O2?


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