Deck 5: Compounds and Their Bonds
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Deck 5: Compounds and Their Bonds
1
To form an ion, a sodium atom
A) gains one electron.
B) gains two electrons.
C) loses seven electrons.
D) loses one electron.
E) loses two electrons.
A) gains one electron.
B) gains two electrons.
C) loses seven electrons.
D) loses one electron.
E) loses two electrons.
loses one electron.
2
The number of electrons in an ion with 20 protons and an ionic charge of 2+ is
A) 24.
B) 22.
C) 20.
D) 18.
E) 16.
A) 24.
B) 22.
C) 20.
D) 18.
E) 16.
18.
3
Which of the following represents the correct electron-dot structure for Cl?
A)
B)
C)
D)
E)
A)

B)

C)
D)

E)


4
The number of electrons in the highest energy level of carbon is
A) one.
B) two.
C) three.
D) four.
E) five.
A) one.
B) two.
C) three.
D) four.
E) five.
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5
The number of valence electrons found in an atom of a Group A element is equal to
A) its atomic number.
B) its mass number.
C) its group number.
D) eight.
E) eight minus the group number.
A) its atomic number.
B) its mass number.
C) its group number.
D) eight.
E) eight minus the group number.
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6
How many electrons will aluminum gain or lose when it forms an ion?
A) lose 1
B) gain 5
C) lose 2
D) lose 3
E) gain 1
A) lose 1
B) gain 5
C) lose 2
D) lose 3
E) gain 1
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7
Which of the following is the correct electron-dot structure for carbon?
A)
B)
C)
D)
E)
A)
B)

C)

D)

E)
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8
What is the ionic charge of an ion with 13 protons and 10 electrons?
A) 1+
B) 2+
C) 3+
D) 2-
E) 3-
A) 1+
B) 2+
C) 3+
D) 2-
E) 3-
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9
How many valence electrons are in the electron-dot structures for the elements in group 3A(13)?
A) 1
B) 2
C) 3
D) 4
E) 6
A) 1
B) 2
C) 3
D) 4
E) 6
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10
Elements in group 2A(2) of the periodic table form ions with a charge of
A) 1+ .
B) 1- .
C) 2+ .
D) 3+.
E) 0.
A) 1+ .
B) 1- .
C) 2+ .
D) 3+.
E) 0.
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11
The ion of aluminum is
A) Al+.
B) Al2+.
C) Al3+.
D) Al3-.
E) Al2-.
A) Al+.
B) Al2+.
C) Al3+.
D) Al3-.
E) Al2-.
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12
The number of electrons in the highest energy level of nitrogen is
A) one.
B) two.
C) three.
D) four.
E) five.
A) one.
B) two.
C) three.
D) four.
E) five.
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13
What is the correct formula for the oxide ion?
A) O₂-
B) O-
C) O+
D) O₂+
E) O₃+
A) O₂-
B) O-
C) O+
D) O₂+
E) O₃+
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14
In ionic compounds, __________ lose their valence electrons to form positively charged __________.
A) metals; anions
B) nonmetals; cations
C) metals; polyatomic ions
D) nonmetals; anions
E) metals; cations
A) metals; anions
B) nonmetals; cations
C) metals; polyatomic ions
D) nonmetals; anions
E) metals; cations
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15
An anion always
A) has a positive charge.
B) contains a group of two or more atoms with a positive charge.
C) contains a metal and a nonmetal.
D) forms covalent bonds.
E) has a negative charge.
A) has a positive charge.
B) contains a group of two or more atoms with a positive charge.
C) contains a metal and a nonmetal.
D) forms covalent bonds.
E) has a negative charge.
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16
Valence electrons are electrons located
A) in the outermost energy level of an atom.
B) in the nucleus of an atom.
C) in the innermost energy level of an atom.
D) throughout the atom.
E) in the first three shells of an atom.
A) in the outermost energy level of an atom.
B) in the nucleus of an atom.
C) in the innermost energy level of an atom.
D) throughout the atom.
E) in the first three shells of an atom.
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17
The octet rule indicates that
A) all of the noble gases have eight total electrons.
B) all of the shells in an atom hold a maximum of 8 electrons.
C) all of the Group A elements have 8 valence electrons.
D) atoms lose, gain, or share valence electrons to have 8 valence electrons.
E) the noble gases react with other compounds to get 8 valence electrons.
A) all of the noble gases have eight total electrons.
B) all of the shells in an atom hold a maximum of 8 electrons.
C) all of the Group A elements have 8 valence electrons.
D) atoms lose, gain, or share valence electrons to have 8 valence electrons.
E) the noble gases react with other compounds to get 8 valence electrons.
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18
How many electrons will chlorine gain or lose when it forms an ion?
A) lose 1
B) gain 1
C) lose 7
D) gain 2
E) lose 3
A) lose 1
B) gain 1
C) lose 7
D) gain 2
E) lose 3
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19
What is the symbol for the ion with 19 protons and 18 electrons?
A) F+
B) F-
C) Ar+
D) K-
E) K+
A) F+
B) F-
C) Ar+
D) K-
E) K+
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20
In an electron-dot structure of an element, the dots are used to represent
A) all of the electrons in the atom.
B) the valence electrons.
C) the electron arrangement.
D) only the electrons that will participate in bond formation.
E) the electrons that the element will gain when it forms a compound.
A) all of the electrons in the atom.
B) the valence electrons.
C) the electron arrangement.
D) only the electrons that will participate in bond formation.
E) the electrons that the element will gain when it forms a compound.
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21
Which of the following polyatomic ions has a 3- ionic charge?
A) hydroxide
B) nitrate
C) sulfate
D) phosphate
E) bicarbonate
A) hydroxide
B) nitrate
C) sulfate
D) phosphate
E) bicarbonate
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22
What is the formula for aluminum nitrite?
A) Al2NO₂
B) AlNO₃
C) Al(NO₂)3
D) Al2(NO₃)3
E) Al2(NO₂)₂
A) Al2NO₂
B) AlNO₃
C) Al(NO₂)3
D) Al2(NO₃)3
E) Al2(NO₂)₂
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23
Which one of the following elements forms two or more ions with different ionic charges?
A) K
B) F
C) Ca
D) O
E) Fe
A) K
B) F
C) Ca
D) O
E) Fe
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24
Fe2(SO₄)3 is called
A) iron sulfate.
B) iron (II) sulfate.
C) iron (III) sulfate.
D) diiron trisulfate.
E) iron trisulfate.
A) iron sulfate.
B) iron (II) sulfate.
C) iron (III) sulfate.
D) diiron trisulfate.
E) iron trisulfate.
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25
In a molecule with covalent bonding,
A) oppositely charged ions are held together by strong electrical attractions.
B) atoms of metals form bonds to atoms of nonmetals.
C) atoms of different metals form bonds.
D) atoms are held together by sharing electrons.
E) atoms of noble gases are held together by attractions between oppositely charged ions.
A) oppositely charged ions are held together by strong electrical attractions.
B) atoms of metals form bonds to atoms of nonmetals.
C) atoms of different metals form bonds.
D) atoms are held together by sharing electrons.
E) atoms of noble gases are held together by attractions between oppositely charged ions.
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26
A(n) __________ is the smallest neutral unit of two or more atoms held together by a covalent bond.
A) ionic compound
B) nucleus
C) molecule
D) formula
E) unit
A) ionic compound
B) nucleus
C) molecule
D) formula
E) unit
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27
What is the correct formula for iron (III) sulfide?
A) Fe2S2
B) Fe2S
C) FeS
D) FeS2
E) Fe2S3
A) Fe2S2
B) Fe2S
C) FeS
D) FeS2
E) Fe2S3
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28
The correct formula for the compound formed from Mg and S is
A) MgS.
B) MgS2.
C) Mg2S.
D) Mg2S2.
E) Mg2S3.
A) MgS.
B) MgS2.
C) Mg2S.
D) Mg2S2.
E) Mg2S3.
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29
The compound MgCl₂ is named
A) magnesium chlorine.
B) magnesium dichloride.
C) magnesium (II) chloride.
D) magnesium chloride.
E) dimagnesium chloride.
A) magnesium chlorine.
B) magnesium dichloride.
C) magnesium (II) chloride.
D) magnesium chloride.
E) dimagnesium chloride.
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30
The name of Al2(SO₄)3 is
A) aluminum(III) sulfate.
B) dialuminum trisulfate.
C) dialuminum sulfate.
D) dialuminum trisulfide.
E) aluminum sulfate.
A) aluminum(III) sulfate.
B) dialuminum trisulfate.
C) dialuminum sulfate.
D) dialuminum trisulfide.
E) aluminum sulfate.
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31
Which one of the following compounds contains an ion with a 3+ charge?
A) KCl
B) Na2O
C) FeCl3
D) CuCl
E) MgCl₂
A) KCl
B) Na2O
C) FeCl3
D) CuCl
E) MgCl₂
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32
The name of the HSO₄- ion is
A) sulfate.
B) hydrogen sulfate.
C) sulfite.
D) hydrogen sulfite.
E) sulfide.
A) sulfate.
B) hydrogen sulfate.
C) sulfite.
D) hydrogen sulfite.
E) sulfide.
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33
An ionic compound
A) has a net positive charge.
B) has a net negative charge.
C) contains only cations.
D) contains only anions.
E) has a net charge of zero.
A) has a net positive charge.
B) has a net negative charge.
C) contains only cations.
D) contains only anions.
E) has a net charge of zero.
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34
What is the correct formula for the iron (II) ion?
A) Fe+
B) Fe2+
C) Fe3+
D) Fe2-
E) Fe3-
A) Fe+
B) Fe2+
C) Fe3+
D) Fe2-
E) Fe3-
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35
What is the formula of the nitride ion?
A) N3-
B) NO₂-
C) NO₃3-
D) NO₃2-
E) NO₃-
A) N3-
B) NO₂-
C) NO₃3-
D) NO₃2-
E) NO₃-
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36
A group of covalently bonded atoms that has an overall electrical charge is called a(n)
A) ionic compound.
B) anion.
C) polyatomic ion.
D) cation.
E) molecule.
A) ionic compound.
B) anion.
C) polyatomic ion.
D) cation.
E) molecule.
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37
The name of the Cu+ ion is
A) copper (II).
B) copper (I).
C) cobalt.
D) copper.
E) cuprum.
A) copper (II).
B) copper (I).
C) cobalt.
D) copper.
E) cuprum.
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38
What is the formula of a compound that contains Na+ and PO₄3- ions?
A) Na3PO₄
B) NaPO₄
C) Na2PO₃
D) Na3PO₃
E) Na3P
A) Na3PO₄
B) NaPO₄
C) Na2PO₃
D) Na3PO₃
E) Na3P
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39
Which of the following polyatomic ions has a positive charge?
A) hydroxide
B) sulfate
C) hydrogen carbonate
D) ammonium
E) nitrate
A) hydroxide
B) sulfate
C) hydrogen carbonate
D) ammonium
E) nitrate
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40
The correct formula for a compound formed from the elements Al and O is
A) AlO.
B) Al2O.
C) Al3O₂.
D) AlO₃ .
E) Al2O₃ .
A) AlO.
B) Al2O.
C) Al3O₂.
D) AlO₃ .
E) Al2O₃ .
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41
Which of the following elements has the lowest electronegativity?
A) Li
B) C
C) N
D) O
E) F
A) Li
B) C
C) N
D) O
E) F
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42
Double and triple bonds form because
A) the atoms involved have high electronegativities.
B) single covalent bonds do not give all of the atoms in the molecule eight valence electrons.
C) one of the atoms in the molecule has more than eight valence electrons.
D) the ions involved have charges larger than one.
E) there is at least one hydrogen atom involved in the bond.
A) the atoms involved have high electronegativities.
B) single covalent bonds do not give all of the atoms in the molecule eight valence electrons.
C) one of the atoms in the molecule has more than eight valence electrons.
D) the ions involved have charges larger than one.
E) there is at least one hydrogen atom involved in the bond.
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43
Ionic bonding is expected in which of these compounds?
A) Cl₂
B) KF
C) OF2
D) HF
E) H₂
A) Cl₂
B) KF
C) OF2
D) HF
E) H₂
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44
The correct name of the compound NCl3 is
A) nitrogen chloride.
B) trinitrogen chloride
C) nitrogen(III) chloride.
D) nickel chloride.
E) nitrogen trichloride.
A) nitrogen chloride.
B) trinitrogen chloride
C) nitrogen(III) chloride.
D) nickel chloride.
E) nitrogen trichloride.
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45
Choose the best electron-dot structure for OCl₂.
A)
B)
C)
D)
E)
A)

B)

C)

D)

E)

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46
If the electronegativity difference between elements X and Y is 2.1, the bond between the elements X-Y is
A) ionic.
B) nonpolar ionic.
C) nonpolar covalent.
D) polar covalent.
E) impossible.
A) ionic.
B) nonpolar ionic.
C) nonpolar covalent.
D) polar covalent.
E) impossible.
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47
What is the formula of carbon tetraiodide?
A) CI
B) CI4
C) C4I
D) CI3
E) C2I4
A) CI
B) CI4
C) C4I
D) CI3
E) C2I4
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48
How many valence electrons are in the electron-dot structure of H₂O?
A) 2
B) 4
C) 6
D) 8
E) 10
A) 2
B) 4
C) 6
D) 8
E) 10
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49
Which of the following substances contains a nonpolar covalent bond?
A) H₂O
B) NaCl
C) NH3
D) MgF2
E) N₂
A) H₂O
B) NaCl
C) NH3
D) MgF2
E) N₂
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50
The correct name for the compound N₂O₃ is
A) nitrogen oxide.
B) nitrogen trioxide.
C) dinitride trioxide.
D) dinitrogen oxide.
E) dinitrogen trioxide.
A) nitrogen oxide.
B) nitrogen trioxide.
C) dinitride trioxide.
D) dinitrogen oxide.
E) dinitrogen trioxide.
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51
The formula for a molecule formed from N and Cl would be
A) NCl.
B) NCl₂.
C) NCl3.
D) N3Cl.
E) NCl5.
A) NCl.
B) NCl₂.
C) NCl3.
D) N3Cl.
E) NCl5.
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52
Which of the following compounds contains a polar covalent bond?
A) NaF
B) HCl
C) Br₂
D) MgO
E) O₂
A) NaF
B) HCl
C) Br₂
D) MgO
E) O₂
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53
In a covalently bonded molecule, the number of electrons that an atom shares with others is usually equal to the number of electrons
A) in the atom.
B) in its nucleus.
C) in all the atoms.
D) in its ion.
E) needed to give it a stable electron configuration
A) in the atom.
B) in its nucleus.
C) in all the atoms.
D) in its ion.
E) needed to give it a stable electron configuration
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54
The ability of an atom to attract the shared electrons in a covalent bond is its
A) electronegativity.
B) bonding ability.
C) polarity.
D) ionic character.
E) nonpolarity.
A) electronegativity.
B) bonding ability.
C) polarity.
D) ionic character.
E) nonpolarity.
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55
The types of compounds that use prefixes in their names are
A) ionic compounds.
B) ionic compounds involving transition metals.
C) polyatomic ions.
D) covalent compounds.
E) compounds that contain polyatomic ions.
A) ionic compounds.
B) ionic compounds involving transition metals.
C) polyatomic ions.
D) covalent compounds.
E) compounds that contain polyatomic ions.
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56
Which of the following compounds contains an ionic bond?
A) NH3
B) H₂O
C) CaO
D) H₂
E) CH4
A) NH3
B) H₂O
C) CaO
D) H₂
E) CH4
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57
Choose the best electron-dot structure for CH₂Cl₂.
A)
B)
C)
D)
E)
A)

B)

C)

D)

E)

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58
Which of the following elements does NOT exist as a diatomic molecule?
A) hydrogen
B) nitrogen
C) chlorine
D) oxygen
E) carbon
A) hydrogen
B) nitrogen
C) chlorine
D) oxygen
E) carbon
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59
How many lone pairs of electrons are in the electron-dot structure of H₂O?
A) 0
B) 1
C) 2
D) 3
E) 4
A) 0
B) 1
C) 2
D) 3
E) 4
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60
How many valence electrons are in the electron-dot structure of CCl4?
A) 0
B) 82
C) 6
D) 8
E) 32
A) 0
B) 82
C) 6
D) 8
E) 32
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61
The strongest interactions between molecules of hydrogen ( H₂ ) are
A) ionic bonds.
B) hydrogen bonds.
C) polar covalent.
D) dipole-dipole.
E) dispersion forces.
A) ionic bonds.
B) hydrogen bonds.
C) polar covalent.
D) dipole-dipole.
E) dispersion forces.
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62
Identify each of the following molecules as polar or nonpolar.
carbon tetrachloride
carbon tetrachloride
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63
The shape of the water molecule (H₂O) is
A) linear.
B) tetrahedral.
C) pyramidal.
D) bent
E) octagonal.
A) linear.
B) tetrahedral.
C) pyramidal.
D) bent
E) octagonal.
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64
The carbon tetrachloride molecule, CCl4, has the shape of a
A) tetrahedron.
B) square.
C) cube.
D) circle.
E) sphere.
A) tetrahedron.
B) square.
C) cube.
D) circle.
E) sphere.
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65
Identify each of the following molecules as polar or nonpolar.
carbon dioxide
carbon dioxide
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66
The VSEPR theory allows us to determine the most favorable
A) shape of a molecule.
B) charge on an ion.
C) color of a compound.
D) bond type for a molecule.
E) formula for a compound.
A) shape of a molecule.
B) charge on an ion.
C) color of a compound.
D) bond type for a molecule.
E) formula for a compound.
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67
The ammonia molecule ( NH3 ) is
A) a polar molecule with polar bonds.
B) a nonpolar molecule with polar bonds.
C) a nonpolar molecule with nonpolar bonds.
D) a polar molecule with nonpolar bonds.
E) a polar molecule with ionic bonds.
A) a polar molecule with polar bonds.
B) a nonpolar molecule with polar bonds.
C) a nonpolar molecule with nonpolar bonds.
D) a polar molecule with nonpolar bonds.
E) a polar molecule with ionic bonds.
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68
Identify each of the following molecules as polar or nonpolar.
hydrogen sulfide
hydrogen sulfide
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69
The water molecule has a dipole with the negative portion
A) localized between the hydrogen atoms.
B) pointing toward the oxygen atom.
C) localized on one of the hydrogens.
D) pointing from the oxygen through the hydrogen atoms.
E) surrounding the molecule.
A) localized between the hydrogen atoms.
B) pointing toward the oxygen atom.
C) localized on one of the hydrogens.
D) pointing from the oxygen through the hydrogen atoms.
E) surrounding the molecule.
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70
The main interactions between molecules of iodine I2 are examples of
A) ionic bonds.
B) covalent bonds.
C) hydrogen bonds.
D) dipole-dipole interactions.
E) dispersion forces.
A) ionic bonds.
B) covalent bonds.
C) hydrogen bonds.
D) dipole-dipole interactions.
E) dispersion forces.
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71
The shape of the carbon dioxide (CO₂) is
A) linear.
B) square.
C) pyramidal.
D) hexagonal.
E) bent.
A) linear.
B) square.
C) pyramidal.
D) hexagonal.
E) bent.
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72
Identify each of the following molecules as polar or nonpolar.
water
water
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73
A polar covalent bond is found in which of these compounds?
A) H₂O
B) F2
C) NaCl
D) H₂
E) N₂
A) H₂O
B) F2
C) NaCl
D) H₂
E) N₂
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74
The shape of the ammonia molecule (NH3) is
A) linear.
B) square.
C) pyramidal.
D) hexagonal.
E) octagonal.
A) linear.
B) square.
C) pyramidal.
D) hexagonal.
E) octagonal.
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75
The bond in Cl₂ is a(n)
A) ionic bond.
B) nonpolar covalent bond.
C) metallic bond.
D) polar ionic bond.
E) no bond.
A) ionic bond.
B) nonpolar covalent bond.
C) metallic bond.
D) polar ionic bond.
E) no bond.
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76
The strongest interactions between molecules of ammonia ( NH3 ) are
A) ionic bonds.
B) hydrogen bonds.
C) polar covalent.
D) dipole-dipole.
E) dispersion forces.
A) ionic bonds.
B) hydrogen bonds.
C) polar covalent.
D) dipole-dipole.
E) dispersion forces.
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77
The shape of the carbon tetrachloride molecule is
A) linear.
B) square.
C) pyramidal.
D) tetrahedral.
E) octagonal.
A) linear.
B) square.
C) pyramidal.
D) tetrahedral.
E) octagonal.
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78
The strongest interactions between molecules of hydrogen chloride are
A) ionic bonds.
B) covalent bonds.
C) hydrogen bonds.
D) dipole-dipole interactions.
E) dispersion forces.
A) ionic bonds.
B) covalent bonds.
C) hydrogen bonds.
D) dipole-dipole interactions.
E) dispersion forces.
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79
The carbon tetrachloride molecule, CCl4, is
A) a polar molecule with polar bonds.
B) a nonpolar molecule with polar bonds.
C) a nonpolar molecule with nonpolar bonds.
D) a polar molecule with nonpolar bonds.
E) a polar molecule with ionic bonds.
A) a polar molecule with polar bonds.
B) a nonpolar molecule with polar bonds.
C) a nonpolar molecule with nonpolar bonds.
D) a polar molecule with nonpolar bonds.
E) a polar molecule with ionic bonds.
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80
Hydrogen sulfide, H₂S, has a shape similar to
A) carbon dioxide.
B) carbon monoxide.
C) hydrogen chloride.
D) water.
E) carbon tetrachloride.
A) carbon dioxide.
B) carbon monoxide.
C) hydrogen chloride.
D) water.
E) carbon tetrachloride.
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