Army Medical College (AMC) Entry Test Chemistry Organic Chemistry Basics — Set 2

Organic Chemistry Basics MCQs set 2 for Army Medical College (AMC) Entry Test Chemistry — 20 solved questions.

Army Medical College (AMC) Entry Test Chemistry Organic Chemistry Basics — Set 2

  1. Question 1

    Q1. A student identifies a six-membered aromatic ring containing five carbon atoms and one nitrogen atom. This compound is classified as:

    • A) Homocyclic compound
    • B) Heterocyclic compound
    • C) Alicyclic compound
    • D) Open chain compound

    Answer: Heterocyclic compound

    Explanation: Pyridine is heterocyclic because nitrogen is part of the ring. Homocyclic is tempting but only contains carbon atoms in the ring.

  2. Question 2

    Q2. In a laboratory analysis of various hydrocarbons, a chemist observes that ethyne has a shorter carbon-carbon bond than ethene. This is because:

    • A) sp3 hybridization
    • B) sp2 hybridization
    • C) sp hybridization
    • D) dsp2 hybridization

    Answer: sp hybridization

    Explanation: Ethyne has sp hybridization leading to the shortest C-C bond. sp2 is tempting but results in a longer double bond.

  3. Question 3

    Q3. A researcher compares the boiling points of n-pentane and neopentane, finding neopentane boils at a lower temperature. This anomaly is due to:

    • A) Higher molecular mass
    • B) Stronger Hydrogen bonding
    • C) Greater surface area
    • D) Spherical shape and less surface area

    Answer: Spherical shape and less surface area

    Explanation: Neopentane has a lower boiling point due to its spherical shape and less surface area. n-Pentane is tempting because it has the same mass.

  4. Question 4

    Q4. During a lecture on stereoisomerism, a professor explains why 1-butene does not exhibit cis-trans isomerism despite having a double bond. The reason is:

    • A) Two identical groups on the same carbon
    • B) Lack of a double bond
    • C) Presence of a methyl group
    • D) Free rotation around the C-C bond

    Answer: Two identical groups on the same carbon

    Explanation: 1-Butene lacks geometric isomerism because one terminal carbon has two identical hydrogen atoms. 2-Butene is tempting as it is also an alkene.

  5. Question 5

    Q5. A sample of ethyl alcohol is found to have the same molecular formula as dimethyl ether. These two compounds are examples of:

    • A) Chain isomers
    • B) Functional group isomers
    • C) Metamers
    • D) Tautomers

    Answer: Functional group isomers

    Explanation: Ethanol and Dimethyl ether are functional isomers. Metamerism is tempting but requires the same functional group with different alkyl distributions.

  6. Question 6

    Q6. To improve the performance of internal combustion engines, straight-chain alkanes are converted into branched-chain isomers. This specific process is known as:

    • A) Thermal Cracking
    • B) Steam Cracking
    • C) Reforming
    • D) Polymerization

    Answer: Reforming

    Explanation: Reforming converts straight chains to branched chains to improve octane number. Cracking is tempting but primarily reduces molecular weight.

  7. Question 7

    Q7. In Lassaigne's test, the appearance of a Prussian blue color after adding ferrous sulfate and ferric chloride confirms the presence of:

    • A) Nitrogen
    • B) Sulfur
    • C) Chlorine
    • D) Phosphorus

    Answer: Nitrogen

    Explanation: Prussian blue indicates nitrogen presence in Lassaigne's test. Sodium nitroprusside is tempting but it is used to detect sulfur.

  8. Question 8

    Q8. While studying molecular geometry, a student notices that the H-N-H bond angle in ammonia is 107.5 degrees instead of 109.5 degrees. This distortion occurs because:

    • A) Bond pair-bond pair repulsion
    • B) Lone pair-bond pair repulsion
    • C) Lone pair-lone pair repulsion
    • D) Increased s-character

    Answer: Lone pair-bond pair repulsion

    Explanation: Ammonia's bond angle is 107.5 due to lone pair-bond pair repulsion. 109.5 is tempting as the ideal tetrahedral angle for sp3.

  9. Question 9

    Q9. A chemical engineer uses high temperatures and steam to break down higher hydrocarbons into lower unsaturated ones like ethene. This process is called:

    • A) Catalytic cracking
    • B) Thermal cracking
    • C) Hydrocracking
    • D) Steam cracking

    Answer: Steam cracking

    Explanation: Steam cracking produces lower unsaturated hydrocarbons like ethene. Catalytic cracking is tempting but it yields higher octane gasoline.

  10. Question 10

    Q10. Two consecutive members of the alkane homologous series, methane and ethane, differ from each other by a CH2 group. They will exhibit:

    • A) Similar chemical properties
    • B) Same physical properties
    • C) Different general formulas
    • D) Same boiling points

    Answer: Similar chemical properties

    Explanation: Members of a homologous series have similar chemical properties but different physical properties. Isomers are tempting but they share the same formula.

  11. Question 11

    Q11. An organic chemist observes that ethyl acetoacetate exists as an equilibrium mixture of keto and enol forms. This phenomenon is termed:

    • A) Metamerism
    • B) Tautomerism
    • C) Geometric isomerism
    • D) Position isomerism

    Answer: Tautomerism

    Explanation: Tautomerism involves the shift of a proton between two atoms. Metamerism is tempting but involves unequal distribution of carbon atoms around a functional group.

  12. Question 12

    Q12. An organic liquid with the formula C4H10O is found to have two alkyl groups attached to an oxygen atom in different arrangements. These are:

    • A) Functional isomers
    • B) Chain isomers
    • C) Metamers
    • D) Tautomers

    Answer: Metamers

    Explanation: Diethyl ether and Methyl propyl ether are metamers. Functional isomers are tempting but these both belong to the ether family.

  13. Question 13

    Q13. In the aromatic compound pyridine, the nitrogen atom contributes one electron to the pi-system. The hybridization state of this nitrogen atom is:

    • A) sp3
    • B) sp2
    • C) sp
    • D) dsp2

    Answer: sp2

    Explanation: In Pyridine, the nitrogen atom is sp2 hybridized. sp3 is tempting but would not allow for the delocalized pi-system in the ring.

  14. Question 14

    Q14. During a discussion on bond strengths, it is noted that the C-C bond in ethane is harder to break than one of the bonds in ethene. This is because:

    • A) Sigma bonds are stronger than pi bonds
    • B) Pi bonds are stronger than sigma bonds
    • C) Both bonds have equal strength
    • D) Ethene has no sigma bonds

    Answer: Sigma bonds are stronger than pi bonds

    Explanation: Sigma bonds are stronger than pi bonds due to head-on overlap. Pi bonds are tempting but involve less effective parallel overlap.

  15. Question 15

    Q15. A student compares the stability of cis-2-butene and trans-2-butene and finds the trans-isomer is more stable. The primary reason for this is:

    • A) Greater dipole moment
    • B) Higher boiling point
    • C) Less steric repulsion between methyl groups
    • D) More steric hindrance

    Answer: Less steric repulsion between methyl groups

    Explanation: Trans-2-Butene is more stable than cis-2-Butene due to less steric repulsion. Cis-isomers are tempting but have groups on the same side.

  16. Question 16

    Q16. A student is asked to classify Thiophene, a five-membered ring containing four carbons and one sulfur atom. It belongs to the class of:

    • A) Homocyclic compounds
    • B) Heterocyclic compounds
    • C) Acyclic compounds
    • D) Aliphatic compounds

    Answer: Heterocyclic compounds

    Explanation: Thiophene is a heterocyclic compound containing sulfur. Homocyclic is tempting but the ring must contain only carbon atoms.

  17. Question 17

    Q17. X-ray diffraction of benzene reveals that all carbon-carbon bond lengths are exactly 1.397 Angstroms. This unique measurement is an anomaly because:

    • A) Bonds are intermediate between single and double
    • B) Bonds are purely single bonds
    • C) Bonds are purely double bonds
    • D) Bonds are purely triple bonds

    Answer: Bonds are intermediate between single and double

    Explanation: Benzene C-C bonds are 1.397A, intermediate between single and double. 1.34A is tempting but it represents a pure double bond.

  18. Question 18

    Q18. A chemist is testing various unsaturated compounds for geometric isomerism but finds that 2-butyne fails the test. This is primarily because:

    • A) Presence of a double bond
    • B) Lack of hydrogen atoms
    • C) Restricted rotation
    • D) Linear geometry around the triple bond

    Answer: Linear geometry around the triple bond

    Explanation: 2-Butyne cannot show cis-trans isomerism because the geometry is linear around the triple bond. 2-Butene is tempting as it shows isomerism.

  19. Question 19

    Q19. In terms of bond length and strength, the C-H bond in ethyne is shorter and stronger than in ethane. This occurs because ethyne has:

    • A) Greater p-character
    • B) sp3 hybridization
    • C) Greater s-character in its sp hybrid orbitals
    • D) Less electronegative carbon

    Answer: Greater s-character in its sp hybrid orbitals

    Explanation: C-H bond length decreases as s-character increases from sp3 to sp. sp3 is tempting but has the longest C-H bond.

  20. Question 20

    Q20. In 1828, Friedrich Wöhler successfully synthesized urea in a laboratory. This historic experiment was significant because it provided evidence against the:

    • A) Atomic Theory
    • B) Vital Force Theory
    • C) Law of Thermodynamics
    • D) Resonance Theory

    Answer: Vital Force Theory

    Explanation: Wöhler synthesized urea from ammonium cyanate, disproving Vital Force Theory. Berzelius is tempting but he actually proposed the theory.

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Level 1

A student identifies a six-membered aromatic ring containing five carbon atoms and one nitrogen atom. This compound is classified as: