The D-and F-Block Elements MCQs With Answers – Part 4 (Class 12 Chemistry)
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The d-and f-Block Elements MCQs with Answers – Part 4 (Class 12 Chemistry)

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301. In the neutral-medium half-reaction \[ \mathrm{MnO_4^-}+2\mathrm{H_2O}+3e^-\rightarrow\mathrm{MnO_2}+x\mathrm{OH^-}, \] the value of \(x\) is:
ⓐ. \(2\)
ⓑ. \(6\)
ⓒ. \(4\)
ⓓ. \(8\)
302. For one mole of permanganate, the order of decreasing oxidising capacity based on the number of electrons accepted is:
ⓐ. strongly alkaline \(\gt\) neutral \(\gt\) acidic
ⓑ. acidic \(\gt\) neutral \(\gt\) strongly alkaline
ⓒ. neutral \(\gt\) strongly alkaline \(\gt\) acidic
ⓓ. acidic \(\gt\) strongly alkaline \(\gt\) neutral
303. A reaction is performed in a strongly alkaline solution, but the product equation is written with \(\mathrm{Mn^{2+}}\) as the permanganate reduction product. The most likely diagnosis is:
ⓐ. the equation is correct because \(\mathrm{Mn^{2+}}\) forms in every medium
ⓑ. manganate, not \(\mathrm{Mn^{2+}}\), is expected in strong alkali
ⓒ. the manganese oxidation state should remain \(+7\)
ⓓ. permanganate cannot undergo reduction in alkaline solution
304. A process requires permanganate to be reduced without forming either dissolved \(\mathrm{Mn^{2+}}\) or a solid \(\mathrm{MnO_2}\) precipitate. The most suitable condition and product are:
ⓐ. strong alkali, giving soluble \(\mathrm{MnO_4^{2-}}\)
ⓑ. acidic medium, producing soluble \(\mathrm{Mn^{2+}}\)
ⓒ. neutral medium, producing soluble \(\mathrm{MnO_2}\)
ⓓ. weakly alkaline medium, producing manganese metal
305. Acidified permanganate is added to a solution containing \(\mathrm{Fe^{2+}}\). How do the oxidation states change?
ⓐ. \(\mathrm{Fe^{2+}}\) becomes \(\mathrm{Fe^{3+}}\), while permanganate becomes \(\mathrm{Mn^{2+}}\)
ⓑ. \(\mathrm{Fe^{2+}}\) is reduced to iron metal, while permanganate is oxidised to manganate
ⓒ. Both \(\mathrm{Fe^{2+}}\) and permanganate are oxidised
ⓓ. \(\mathrm{Fe^{3+}}\) is reduced to \(\mathrm{Fe^{2+}}\), while \(\mathrm{Mn^{2+}}\) forms permanganate
306. Acidified permanganate oxidises \(\mathrm{Fe^{2+}}\). The balanced ionic equation is:
ⓐ. \(\mathrm{MnO_4^-}+4\mathrm{H^+}+3\mathrm{Fe^{2+}}\rightarrow\mathrm{MnO_2}+2\mathrm{H_2O}+3\mathrm{Fe^{3+}}\)
ⓑ. \(\mathrm{MnO_4^-}+8\mathrm{H^+}+5\mathrm{Fe^{3+}}\rightarrow\mathrm{Mn^{2+}}+4\mathrm{H_2O}+5\mathrm{Fe^{2+}}\)
ⓒ. \(\mathrm{MnO_4^-}+8\mathrm{H^+}+5\mathrm{Fe^{2+}}\rightarrow\mathrm{Mn^{2+}}+4\mathrm{H_2O}+5\mathrm{Fe^{3+}}\)
ⓓ. \(\mathrm{MnO_4^-}+5\mathrm{H^+}+\mathrm{Fe^{2+}}\rightarrow\mathrm{Mn^{2+}}+5\mathrm{H_2O}+\mathrm{Fe^{3+}}\)
307. Complete reaction of \(0.025\,mol\) of \(\mathrm{MnO_4^-}\) with \(\mathrm{Fe^{2+}}\) in acidic medium requires:
ⓐ. \(0.050\,mol\) of \(\mathrm{Fe^{2+}}\)
ⓑ. \(0.125\,mol\) of \(\mathrm{Fe^{2+}}\)
ⓒ. \(0.025\,mol\) of \(\mathrm{Fe^{2+}}\)
ⓓ. \(0.250\,mol\) of \(\mathrm{Fe^{2+}}\)
308. For oxidation of iodide by acidified permanganate, the balanced ionic equation is:
ⓐ. \(\mathrm{MnO_4^-}+8\mathrm{H^+}+5\mathrm{I^-}\rightarrow\mathrm{Mn^{2+}}+4\mathrm{H_2O}+5\mathrm{I_2}\)
ⓑ. \(\mathrm{2MnO_4^-}+8\mathrm{H^+}+10\mathrm{I^-}\rightarrow2\mathrm{Mn^{2+}}+4\mathrm{H_2O}+5\mathrm{I_2}\)
ⓒ. \(\mathrm{2MnO_4^-}+16\mathrm{H^+}+5\mathrm{I^-}\rightarrow2\mathrm{Mn^{2+}}+8\mathrm{H_2O}+5\mathrm{I_2}\)
ⓓ. \(\mathrm{2MnO_4^-}+16\mathrm{H^+}+10\mathrm{I^-}\rightarrow2\mathrm{Mn^{2+}}+8\mathrm{H_2O}+5\mathrm{I_2}\)
309. Acidified potassium permanganate is added to excess potassium iodide, followed by starch solution. Which observation is expected?
ⓐ. a green manganate solution forms without production of molecular iodine
ⓑ. brown \(\mathrm{MnO_2}\) precipitates while iodide remains unchanged
ⓒ. purple colour disappears, and liberated iodine turns starch blue-black
ⓓ. the solution remains purple because iodide cannot reduce permanganate
310. A graph plots moles of \(\mathrm{I_2}\) formed on the vertical axis against moles of \(\mathrm{MnO_4^-}\) consumed in the oxidation of excess iodide by acidified permanganate. The slope of the straight line is:
ⓐ. \(2.5\)
ⓑ. \(5.0\)
ⓒ. \(0.40\)
ⓓ. \(1.0\)
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