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Chapter 11 Intermolecular Forces, Liquids, and Solids

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In the unlabeled phase diagram below, the line segment from A to B separates which two phases? ... What are the net number of Na and Cl ions in the NaCl unit ... – PowerPoint PPT presentation

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Title: Chapter 11 Intermolecular Forces, Liquids, and Solids


1
Chapter 11Intermolecular Forces, Liquids, and
Solids
2
Of the following substances, predict which has
the highest boiling point based on intermolecular
forces.
  • Propane, C3H8
  • Dimethyl ether, CH3OCH3
  • Methyl chloride, CH3Cl
  • Acetaldehyde, CH3CHO
  • Acetonitrile, CH3CN

3
Correct Answer
  • Propane, C3H8
  • Dimethyl ether, CH3OCH3
  • Methyl chloride, CH3Cl
  • Acetaldehyde, CH3CHO
  • Acetonitrile, CH3CN

Each of these molecules has almost the same
molecular weight however, acetonitrile has the
largest dipole moment (3.9 D) and hence the
largest dipole-dipole forces. Thus it has the
highest boiling point.
4
Of the following substances, predict which has
the lowest boiling point based on London
dispersion forces.
  • He
  • Ne
  • Ar
  • Kr
  • Xe

5
Correct Answer
  • He
  • Ne
  • Ar
  • Kr
  • Xe

More massive species have more polarizability and
stronger London dispersion forces consequently,
amongst the noble gases He has the lowest boiling
point.
6
Of the following substances, predict which has
the highest boiling point based upon
intermolecular forces?
  • CH4
  • H2O
  • H2S
  • SiH4
  • H2Se

N?H . OC
7
Correct Answer
  • CH4
  • H2O
  • H2S
  • SiH4
  • H2Se

Of these, only H2O has any hydrogen bonding.
Hydrogen bonding substantially increases the
intermolecular forces, and hence the boiling
point.
8
Which one of the following phase changes is an
exothermic process?
  • Sublimation
  • Vaporization
  • Condensation
  • Melting

9
Correct Answer
  • Sublimation
  • Vaporization
  • Condensation
  • Melting

All the other phase-change processes listed are
endothermic.
10
  • How much energy is required to raise the
    temperature of 1800. g ice at 0C to 10C? DHfus
    6.01 kJ/mol, heat capacity of water is 75.2
    J/mol-K.
  • 60.1 kJ
  • 75.2 kJ
  • 135 kJ
  • 601 kJ
  • 676 kJ

11
Correct Answer
There are 100 moles of ice, so the enthalpy of
fusion is DH (6.01 kJ/mol)(100 mol) 601
kJ. To raise the water temperature 10C requires
q (75.2 J/mol-K)(100 mol)(10C ) 75.2 kJ.
Total energy 601 kJ 75 kJ 676 kJ
  • 60.1 kJ
  • 75.2 kJ
  • 135 kJ
  • 601 kJ
  • 676 kJ

12
In the unlabeled phase diagram below, the line
segment from A to B separates which two phases?
  • Gas-liquid
  • Liquid-solid
  • Solid-gas

13
Correct Answer
  • Gas-liquid
  • Liquid-solid
  • Solid-gas

14
Quartz is an example of which type of solid
crystalline or amorphous?
  • Crystalline
  • Amorphous

15
Correct Answer
In quartz, the Si?O bonds are arranged in
regular, defined arrays.
  • Crystalline
  • Amorphous

16
  • What are the net number of Na and Cl? ions in
    the NaCl unit cell represented below?
  • 4 Na, 4 Cl?
  • 2 Na, 1 Cl?
  • 2 Na, 2 Cl?
  • 1 Na, 2 Cl?
  • 1 Na, 1 Cl?

17
Correct Answer
There are 4 Na resulting from (1/4
Na/edge)(12 edges) 3 Na (1 Na/center)(1
center) 1 Na There are 4 Cl- resulting from
(1/8 Cl?/corner)(8 corners) 1 Cl? (1/2
Cl?/face)(6 faces) 3 Cl?
  • 4 Na, 4 Cl?
  • 2 Na, 1 Cl?
  • 2 Na, 2 Cl?
  • 1 Na, 2 Cl?
  • 1 Na, 1 Cl?

18
  • The NaCl crystal shown below is an example of
    which type of cubic lattice?
  • Primitive cubic
  • Body-centered cubic
  • Face-centered cubic

19
Correct Answer
  • Primitive cubic
  • Body-centered cubic
  • Face-centered cubic

NaCl is an example of a face-centered crystalline
lattice.
20
  • Diamond and graphite are examples of which type
    of crystalline solids?
  • Molecular
  • Covalent network
  • Ionic
  • Metallic

21
Correct Answer
  • Molecular
  • Covalent network
  • Ionic
  • Metallic

Diamond and graphite are both forms of carbon,
and consist of a network of covalent bonds (hence
covalent network).
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