Alkanes IUPAC Nomenclature and Conformations - UNSOLVED PRACTICE SET
Chapter: Hydrocarbons | Topic: Alkanes IUPAC Nomenclature and Conformations
ALKANES IUPAC NOMENCLATURE AND CONFORMATIONS - UNSOLVED PRACTICE SET
Topic: Alkanes IUPAC Nomenclature and Conformations
Multiple Choice Questions
Q1. The IUPAC name of the compound CHββCH(CHβ)βCHββCHβ is:
- Isopentane
- 2-Methylbutane
- 3-Methylbutane
- Neopentane
Q2. The general formula of alkanes is:
- CβHββ
- CβHββββ
- CβHββββ
- CβHββββ
Q3. In the staggered conformation of ethane, the dihedral angle between CβH bonds on adjacent carbon atoms is:
- 0Β°
- 60Β°
- 120Β°
- 180Β°
Q4. The eclipsed conformation of ethane is less stable than the staggered conformation due to:
- Torsional strain
- Steric strain
- Angle strain
- Both (a) and (b)
Q5. The energy difference between staggered and eclipsed conformations of ethane is approximately:
- 12.5 kJ/mol
- 25 kJ/mol
- 50 kJ/mol
- 100 kJ/mol
Q6. The most stable conformation of butane along the CββCβ bond is:
- Fully eclipsed
- Gauche
- Anti
- Eclipsed
Short Answer Questions
Q7. Write the IUPAC names of the following alkanes:
(a) CHββCHββCH(CHβ)βCHββCHβ
(b) (CHβ)βCHβCH(CHβ)βCHββCHβ
Q8. Draw the Newman projections for ethane showing:
(a) Staggered conformation
(b) Eclipsed conformation
Label the dihedral angle in each.
Q9. What is the difference between conformers and constitutional isomers? Can conformers be separated?
Q10. Explain why the anti conformation of butane is more stable than the gauche conformation.
Q11. Your father fills petrol in the car, which contains a mixture of alkanes including octane (CβHββ). Write the IUPAC name of a branched isomer of octane that has excellent anti-knock properties.
Q12. Why is rotation around the CβC single bond possible in alkanes, but not around a C=C double bond in alkenes?
Long Answer Questions
Q13. Discuss the IUPAC nomenclature of alkanes with examples. Include:
(a) Selection of the longest continuous carbon chain (parent chain)
(b) Numbering of the chain to give substituents the lowest possible locants
(c) Naming and alphabetising substituents
(d) Naming complex branched substituents (isopropyl, tert-butyl, etc.)
Illustrate with at least three examples of increasing complexity.
Q14. Explain the conformations of butane (CβHββ) along the CββCβ bond:
(a) Draw Newman projections for all conformations (fully eclipsed, gauche, eclipsed, anti)
(b) Explain the types of strain present in each conformation (torsional, steric)
(c) Arrange the conformations in order of increasing energy and stability
(d) Calculate the relative energy of each conformation
Q15. Understanding alkane conformations is crucial in biochemistry and drug design. Discuss:
(a) Why the staggered conformation is preferred in protein structures (peptide bonds are somewhat rigid, but side chains rotate)
(b) How conformational analysis helps predict the biological activity of drug molecules
(c) Why LPG (liquefied petroleum gas) used in Indian households contains mainly propane and butane β how their conformations affect storage and combustion
(d) The role of conformational analysis in designing pesticides for Indian agriculture
Numerical / Application-Based Problems
Q16. Consider the alkane with the formula CβHββ.
(a) Draw all possible structural isomers and write their IUPAC names.
(b) Identify which isomer has the highest boiling point and explain why.
(c) How many of these isomers have chiral centres? Identify them.
Q17. The energy barriers for rotation around the CββCβ bond in butane are given:
Anti to gauche: 3.8 kJ/mol
Gauche to eclipsed: 16 kJ/mol
Eclipsed to fully eclipsed: 19 kJ/mol
(a) Calculate the total energy difference between the most stable and least stable conformations.
(b) At room temperature (25Β°C), what percentage of butane molecules would you expect to be in the anti conformation? (Assume Boltzmann distribution, k = 1.38 Γ 10β»Β²Β³ J/K)
(c) Explain why the energy barrier between anti and gauche is much smaller than between staggered and eclipsed.
Q18. A petroleum refinery in Gujarat processes crude oil to produce various alkanes. In one batch, 1000 kg of a CβHββ isomer mixture is produced.
(a) Calculate the number of moles of CβHββ in 1000 kg.
(b) If the mixture contains 60% n-octane and 40% 2,2,4-trimethylpentane (isooctane) by mass, calculate the mass of each component.
(c) The octane rating of a fuel is defined relative to isooctane (100) and n-heptane (0). If this mixture has an octane rating of 92, explain what this means for engine performance.
[Given: Molar mass of CβHββ = 114 g/mol]