Lesson 3.3.4.1

3.3.4.1 Structure, bonding and reactivity Quiz: AQA Chemistry, Unit 3

20 questions

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Lesson 3.3.4.1, Structure, bonding and reactivity: 20 multiple choice questions for the AQA Chemistry (7405), Unit 3: Organic chemistry, written with Revision Ninja.

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The 20 questions

  1. What is the general formula of alkenes with one C=C double bond?

    • CnH2n-2
    • CnH2n+2
    • CnH2n+1OH
    • CnH2n
  2. What type of bonding is present in the C=C double bond of an alkene?

    • One ionic bond and one covalent bond
    • One sigma bond and one pi bond
    • Two pi bonds only
    • Two sigma bonds only
  3. Why is the C=C double bond a centre of high electron density?

    • The C=C bond is ionic
    • The sigma bond contains no electrons
    • The double bond is always filled with hydrogen
    • The pi electron cloud lies above and below the bond, making it attractive to electrophiles
  4. What is the bond angle around each carbon in a C=C double bond?

    • About 109.5 degrees
    • About 90 degrees
    • About 120 degrees
    • About 180 degrees
  5. Why are alkenes described as unsaturated hydrocarbons?

    • They are always ionic salts
    • They contain only single bonds and no hydrogen
    • They are saturated with oxygen
    • They contain a C=C double bond and so can add other atoms across it
  6. Which compound is the simplest alkene?

    • Propane
    • Methane
    • Ethene
    • Ethane
  7. Which test would show that an organic compound is unsaturated?

    • Adding silver nitrate to form a white precipitate
    • Adding sodium hydroxide to form a blue precipitate
    • A flame test with a green flame
    • Decolourisation of bromine water
  8. What is the shape of the ethene molecule around each carbon?

    • Linear
    • Pyramidal
    • Tetrahedral
    • Trigonal planar
  9. Why is the C=C bond more reactive than a C-C bond?

    • The sigma bond is weaker than the pi bond
    • The C=C bond is ionic
    • The pi bond is weaker and more exposed to attack, so it breaks more easily
    • The C=C bond has no electrons
  10. Which molecule has a C=C double bond?

    • Propane
    • Methanol
    • Ethanoic acid
    • Propene
  11. What is the bond enthalpy trend of C=C compared with C-C?

    • The C=C bond is stronger overall but the pi part is weaker
    • The C=C bond and C-C bond have identical strengths
    • The C=C bond is weaker than the C-C bond in every case
    • The C=C bond is ionic while C-C is covalent
  12. Which of these compounds contains a C=C double bond with two different groups on each carbon?

    • Ethanol
    • Propane
    • But-2-ene
    • Ethene
  13. How many sigma and pi bonds are present in ethene, C2H4?

    • 6 sigma and 0 pi
    • 3 sigma and 1 pi
    • 4 sigma and 2 pi
    • 5 sigma and 1 pi
  14. What is the electron pair geometry around each carbon in ethene?

    • Five electron pairs arranged trigonal bipyramidal
    • Two electron pairs arranged linear
    • Four electron pairs arranged tetrahedral
    • Three electron pairs arranged trigonal planar
  15. Which property makes alkenes useful as starting materials in industry?

    • They are always solid at room temperature
    • They contain only ionic bonds
    • They are unreactive and therefore stable for storage
    • Their C=C bond is reactive towards electrophiles and other reagents
  16. Why are the electrons in the pi bond of an alkene more available for attack than in the sigma bond?

    • They lie above and below the molecular plane and are less tightly held
    • They are in the nucleus of the carbon atom
    • They are part of an ionic bond
    • They lie along the bond axis between the two atoms
  17. Which description best explains why ethene is planar?

    • Each carbon has two bonding regions only
    • The molecule has a lone pair on each carbon
    • Each carbon has three bonding regions arranged at 120 degrees in one plane
    • Each carbon has four bonding regions arranged tetrahedrally
  18. Explain why alkenes readily undergo addition reactions rather than substitution reactions.

    • The C=C bond is too strong to break
    • The pi bond is weaker than the sigma bond, so the double bond opens up to add atoms across it
    • Alkenes contain no electrons available for reaction
    • Alkenes react only by removing hydrogen atoms
  19. Explain why the C=C bond in ethene is shorter than the C-C bond in ethane.

    • The C=C bond contains fewer electrons than the C-C bond
    • The double bond is ionic and so shorter
    • The double bond holds more shared electron pairs, pulling the carbon nuclei closer together
    • Ethene has longer carbon chains than ethane
  20. Which feature of a double bond gives it a high electron density region?

    • The pi electron cloud above and below the bond axis
    • The hydrogen atoms bonded to carbon
    • The sigma bond in the molecular axis only
    • The lone pairs on carbon atoms

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