Organic Chemistry – Some Basic Principles And Techniques MCQs With Answers – Part 5 (Class 11 Chemistry)
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Organic Chemistry – Some Basic Principles and Techniques MCQs with Answers – Part 5 (Class 11 Chemistry)

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401. Study the following reaction descriptions.
CaseOrganic changeBest classification
P\( \mathrm{CH_2=CH_2} \) becomes \( \mathrm{CH_3CH_3} \)reduction
Q\( \mathrm{CH_3CH_2OH} \) becomes \( \mathrm{CH_3CHO} \)oxidation
R\( \mathrm{CH_3Br} \) becomes \( \mathrm{CH_3OH} \)substitution
S\( \mathrm{CH_3CH_2OH} \) becomes \( \mathrm{CH_2=CH_2} \)addition
Which row contains the unsuitable classification?
ⓐ. S
ⓑ. P
ⓒ. Q
ⓓ. R
402. Read the case below and answer the question.
A sequence begins with \( \mathrm{CH_3CH_2Br} \). In Step P, \( \mathrm{Br} \) is replaced by \( \mathrm{OH} \) to form \( \mathrm{CH_3CH_2OH} \). In Step Q, the alcohol is heated with a dehydrating agent and gives \( \mathrm{CH_2=CH_2} \). In Step R, \( \mathrm{H_2} \) is added to the alkene to form \( \mathrm{CH_3CH_3} \).
The reaction types in Step P, Step Q, and Step R are respectively:
ⓐ. addition, substitution, elimination
ⓑ. substitution, elimination, addition
ⓒ. elimination, addition, substitution
ⓓ. oxidation, rearrangement, substitution
403. A learner classifies \( \mathrm{CH_3CH_2Cl + KOH(aq) \rightarrow CH_3CH_2OH + KCl} \) as elimination because a salt is formed. What is the better judgement?
ⓐ. It is elimination because all reactions forming salts are eliminations
ⓑ. It is addition because \( \mathrm{KOH} \) is present
ⓒ. \( \mathrm{Cl} \) is replaced by \( \mathrm{OH} \)
ⓓ. It is rearrangement because potassium changes position
404. A hydrocarbon \( \mathrm{C_3H_6} \) adds \( \mathrm{Br_2} \) to give \( \mathrm{C_3H_6Br_2} \). If \(28.0\,\text{g}\) of the hydrocarbon reacts completely, what mass of \( \mathrm{Br_2} \) is required? Use \( \mathrm{C}=12 \), \( \mathrm{H}=1 \), and \( \mathrm{Br}=80 \).
ⓐ. \(106.7\,\text{g}\)
ⓑ. \(53.3\,\text{g}\)
ⓒ. \(80.0\,\text{g}\)
ⓓ. \(160.0\,\text{g}\)
405. A sample of \( \mathrm{C_2H_5Br} \) undergoes complete substitution with \( \mathrm{OH^-} \) to form \( \mathrm{C_2H_5OH} \). If \(10.9\,\text{g}\) of \( \mathrm{C_2H_5Br} \) is used, what mass of ethanol is formed assuming complete conversion? Use \( \mathrm{C}=12 \), \( \mathrm{H}=1 \), \( \mathrm{O}=16 \), and \( \mathrm{Br}=80 \).
ⓐ. \(2.3\,\text{g}\)
ⓑ. \(9.2\,\text{g}\)
ⓒ. \(4.6\,\text{g}\)
ⓓ. \(10.9\,\text{g}\)
406. During purification by sublimation, the suitable condition is that:
ⓐ. both components must be liquids with identical boiling points
ⓑ. the impurity must react chemically with the main compound
ⓒ. the compound must be insoluble in every solvent
ⓓ. solid-vapour-solid change of one component
407. A mixture contains \( \mathrm{naphthalene} \) and common salt. The most suitable purification method for separating \( \mathrm{naphthalene} \) is:
ⓐ. simple distillation
ⓑ. sublimation
ⓒ. steam distillation
ⓓ. chromatography only
408. Crystallisation purifies an organic solid mainly because:
ⓐ. every impurity must crystallise before the main compound
ⓑ. the compound is converted into vapour without melting
ⓒ. hot-solvent dissolution and cooling crystallisation
ⓓ. the solvent must react with the impurity to form a gas
409. A solid organic compound is very soluble in hot ethanol but only sparingly soluble in cold ethanol. Most coloured impurities remain dissolved even after cooling. The best purification method is:
ⓐ. crystallisation from ethanol
ⓑ. fractional distillation
ⓒ. steam distillation
ⓓ. differential extraction with water only
410. A crystallisation experiment starts with \(12.0\,\text{g}\) of impure solid containing \(80.0\%\) desired compound by mass. After recrystallisation, \(8.4\,\text{g}\) of pure crystals is obtained. What is the percentage recovery of the desired compound?
ⓐ. \(70.0\%\)
ⓑ. \(87.5\%\)
ⓒ. \(75.0\%\)
ⓓ. \(96.0\%\)
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