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From OpenStax / Rice University

Intermolecular Forces Quiz

12 questions chemistry Grades 9-12

The question sheet

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  1. How are particles arranged in a solid?

    • Close together, no arrangement
    • Randomly spaced and mobile
    • Far apart with no order
    • Tightly packed, often regular pattern
    Reveal answer

    Answer: Tightly packed, often regular pattern

    Source evidence

    PDF page 530: • Particles in a solid are tightly packed together and often arranged in a regular pattern; in a liquid, they are

  2. In a gas, how do the particles move?

    • Independently except when colliding
    • They vibrate about fixed positions
    • They move past each other in contact
    • They stay in a regular pattern
    Reveal answer

    Answer: Independently except when colliding

    Source evidence

    PDF page 530: liquid, they move past each other but remain in essentially constant contact; in a gas, they move independently of one another except when they collide. The differences in the properties of a solid, liquid, or gas reflect the strengths of the attractive forces between the atoms, molecules, or ions that make up each phase. The phase in which a substance exists depends on the relative extents of its intermolecular forces (IMFs) and the kinetic energies (KE) of its molecules. IMFs are the various forces of attraction that may exist between the atoms and molecules of a substance due to electrostatic phenomena, as will be detailed in this module. These forces serve to hold particles close together, whereas the particles’ KE provides the energy required to overcome the attractive forces and thus increase the distance between particles. Figure 10.2 illustrates how changes in physical state may be induced by changing the temperature, hence, the average KE, of a given substance.

  3. What provides the energy to overcome attractive forces between particles?

    • Van der Waals forces
    • Intermolecular forces
    • Covalent bonds
    • Kinetic energy
    Reveal answer

    Answer: Kinetic energy

    Source evidence

    PDF page 530: liquid, they move past each other but remain in essentially constant contact; in a gas, they move independently of one another except when they collide. The differences in the properties of a solid, liquid, or gas reflect the strengths of the attractive forces between the atoms, molecules, or ions that make up each phase. The phase in which a substance exists depends on the relative extents of its intermolecular forces (IMFs) and the kinetic energies (KE) of its molecules. IMFs are the various forces of attraction that may exist between the atoms and molecules of a substance due to electrostatic phenomena, as will be detailed in this module. These forces serve to hold particles close together, whereas the particles’ KE provides the energy required to overcome the attractive forces and thus increase the distance between particles. Figure 10.2 illustrates how changes in physical state may be induced by changing the temperature, hence, the average KE, of a given substance.

  4. Which force is present in all condensed phases regardless of substance?

    • Hydrogen bonding
    • London dispersion force
    • Ionic bonding
    • Dipole-dipole attraction
    Reveal answer

    Answer: London dispersion force

    Source evidence

    PDF page 532: One of the three van der Waals forces is present in all condensed phases, regardless of the nature of the atoms or molecules composing the substance. This attractive force is called the London dispersion force in honor of Germanborn American physicist Fritz London who, in 1928, first explained it. This force is often referred to as simply the dispersion force. Because the electrons of an atom or molecule are in constant motion (or, alternatively, the electron’s location is subject to quantum-mechanical variability), at any moment in time, an atom or molecule can develop a temporary, instantaneous dipole if its electrons are distributed asymmetrically. The presence of this dipole can, in turn, distort the electrons of a neighboring atom or molecule, producing an induced dipole. These two rapidly

  5. Who first explained the London dispersion force, and in what year?

    • Fritz London, 1908
    • Alex Greaney, 2014
    • Kellar Autumn, 2000
    • Fritz London, 1928
    Reveal answer

    Answer: Fritz London, 1928

    Source evidence

    PDF page 532: One of the three van der Waals forces is present in all condensed phases, regardless of the nature of the atoms or molecules composing the substance. This attractive force is called the London dispersion force in honor of Germanborn American physicist Fritz London who, in 1928, first explained it. This force is often referred to as simply the dispersion force. Because the electrons of an atom or molecule are in constant motion (or, alternatively, the electron’s location is subject to quantum-mechanical variability), at any moment in time, an atom or molecule can develop a temporary, instantaneous dipole if its electrons are distributed asymmetrically. The presence of this dipole can, in turn, distort the electrons of a neighboring atom or molecule, producing an induced dipole. These two rapidly

  6. About how much energy is needed to overcome IMFs in one mole of liquid HCl?

    • 25 kilojoules
    • 430 kilojoules
    • 150 kilojoules
    • 17 kilojoules
    Reveal answer

    Answer: 17 kilojoules

    Source evidence

    PDF page 532: Under appropriate conditions, the attractions between all gas molecules will cause them to form liquids or solids. This is due to intermolecular forces, not intramolecular forces. Intramolecular forces are those within the molecule that keep the molecule together, for example, the bonds between the atoms. Intermolecular forces are the attractions between molecules, which determine many of the physical properties of a substance. Figure 10.5 illustrates these different molecular forces. The strengths of these attractive forces vary widely, though usually the IMFs between small molecules are weak compared to the intramolecular forces that bond atoms together within a molecule. For example, to overcome the IMFs in one mole of liquid HCl and convert it into gaseous HCl requires only about 17 kilojoules. However, to break the covalent bonds between the hydrogen and chlorine atoms in one mole of HCl requires about 25 times more energy—430 kilojoules.

  7. What are all attractive forces between neutral atoms and molecules known as?

    • Van der Waals forces
    • Covalent bonds
    • Intramolecular forces
    • Ionic forces
    Reveal answer

    Answer: Van der Waals forces

    Source evidence

    PDF page 532: All of the attractive forces between neutral atoms and molecules are known as van der Waals forces, although they are usually referred to more informally as intermolecular attraction. We will consider the various types of IMFs in the next three sections of this module.

  8. What holds a molecule together internally?

    • Dipole-dipole attractions
    • Dispersion forces
    • Intermolecular forces
    • Intramolecular forces
    Reveal answer

    Answer: Intramolecular forces

    Source evidence

    PDF page 532: Under appropriate conditions, the attractions between all gas molecules will cause them to form liquids or solids. This is due to intermolecular forces, not intramolecular forces. Intramolecular forces are those within the molecule that keep the molecule together, for example, the bonds between the atoms. Intermolecular forces are the attractions between molecules, which determine many of the physical properties of a substance. Figure 10.5 illustrates these different molecular forces. The strengths of these attractive forces vary widely, though usually the IMFs between small molecules are weak compared to the intramolecular forces that bond atoms together within a molecule. For example, to overcome the IMFs in one mole of liquid HCl and convert it into gaseous HCl requires only about 17 kilojoules. However, to break the covalent bonds between the hydrogen and chlorine atoms in one mole of HCl requires about 25 times more energy—430 kilojoules.

  9. Which halogen is a liquid at room temperature?

    • F2
    • I2
    • Cl2
    • Br2
    Reveal answer

    Answer: Br2

    Source evidence

    PDF page 533: Dispersion forces that develop between atoms in different molecules can attract the two molecules to each other. The forces are relatively weak, however, and become significant only when the molecules are very close. Larger and heavier atoms and molecules exhibit stronger dispersion forces than do smaller and lighter atoms and molecules. F2 and Cl2 are gases at room temperature (reflecting weaker attractive forces); Br2 is a liquid, and I2 is a solid (reflecting stronger attractive forces). Trends in observed melting and boiling points for the halogens clearly demonstrate this effect, as seen in Table 10.1. Melting and Boiling Points of the Halogens Halogen

  10. How do larger, heavier molecules compare in dispersion forces?

    • No dispersion forces
    • Stronger dispersion forces
    • Equal dispersion forces
    • Weaker dispersion forces
    Reveal answer

    Answer: Stronger dispersion forces

    Source evidence

    PDF page 533: Dispersion forces that develop between atoms in different molecules can attract the two molecules to each other. The forces are relatively weak, however, and become significant only when the molecules are very close. Larger and heavier atoms and molecules exhibit stronger dispersion forces than do smaller and lighter atoms and molecules. F2 and Cl2 are gases at room temperature (reflecting weaker attractive forces); Br2 is a liquid, and I2 is a solid (reflecting stronger attractive forces). Trends in observed melting and boiling points for the halogens clearly demonstrate this effect, as seen in Table 10.1. Melting and Boiling Points of the Halogens Halogen

  11. What is polarizability?

    • Ease of distorting a charge cloud
    • Number of hydrogen bonds
    • A molecule's total mass
    • Strength of a covalent bond
    Reveal answer

    Answer: Ease of distorting a charge cloud

    Source evidence

    PDF page 533: The increase in melting and boiling points with increasing atomic/molecular size may be rationalized by considering how the strength of dispersion forces is affected by the electronic structure of the atoms or molecules in the substance. In a larger atom, the valence electrons are, on average, farther from the nuclei than in a smaller atom. Thus, they are less tightly held and can more easily form the temporary dipoles that produce the attraction. The measure of how easy or difficult it is for another electrostatic charge (for example, a nearby ion or polar molecule) to distort a molecule’s charge distribution (its electron cloud) is known as polarizability. A molecule that has a charge cloud that is easily distorted is said to be very polarizable and will have large dispersion forces; one with a charge cloud that is difficult to distort is not very polarizable and will have small dispersion forces.

  12. Which pentane isomer has the strongest dispersion forces?

    • isopentane
    • all equal
    • neopentane
    • n-pentane
    Reveal answer

    Answer: n-pentane

    Source evidence

    PDF page 534: The shapes of molecules also affect the magnitudes of the dispersion forces between them. For example, boiling points for the isomers n-pentane, isopentane, and neopentane (shown in Figure 10.7) are 36 °C, 27 °C, and 9.5 °C, respectively. Even though these compounds are composed of molecules with the same chemical formula, C5H12, the difference in boiling points suggests that dispersion forces in the liquid phase are different, being greatest for n-pentane and least for neopentane. The elongated shape of n-pentane provides a greater surface area available for contact between molecules, resulting in correspondingly stronger dispersion forces. The more compact shape of isopentane offers a smaller surface area available for intermolecular contact and, therefore, weaker dispersion forces. Neopentane molecules are the most compact of the three, offering the least available surface area for intermolecular contact and, hence, the weakest dispersion forces. This behavior is analogous to the connections that may be formed

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