Deck 2: Life, Chemistry, and Water

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Question
Hydrogen, atomic number 1, has 3 isotopes, 1H, 2H, 3H. 1H is comprised of one proton, one neutron and one electron.
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Question
Radioactive ____ is commonly used to treat patients with dangerously overactive thyroid glands. ​

A)carbon
B)radium
C)iodine
D)thallium
E)cobalt
Question
<strong>  Figure 2.1 Answer the question using the accompanying figure. The mass number of the atom depicted in the figure is ____. ​</strong> A)​4 B)​6 C)​8 D)​12 E)​18 <div style=padding-top: 35px>
Figure 2.1
Answer the question using the accompanying figure. The mass number of the atom depicted in the figure is ____. ​

A)​4
B)​6
C)​8
D)​12
E)​18
Question
Diluted acetic acid, CH3COOH, is commonly called vinegar. How many atoms of hydrogen are present in one molecule of acetic acid? ​

A)one
B)two
C)three
D)four
E)five
Question
Atoms with atomic numbers between lithium and neon have two energy levels.
Question
Four elements, including ____, make up more than 96% of the mass of most living organisms.

A)sodium
B)potassium
C)phosphorus
D)nitrogen
E)calcium
Question
Proteins in thermophiles must be stabilized by van der Waals forces, because hydrogen bonds cannot be maintained at high temperatures
Question
Acid precipitation can have a pH as low as 3.
Question
A trace element is one found in specific organisms in ____ quantities and is ____ for normal biological functions.

A)moderate; unnecessary
B)moderate; vital
C)small; unnecessary
D)large; unnecessary
E)small; vital ​
Question
The substance O2 is considered to be ____. ​

A)both a molecule and a compound
B)a compound but not a molecule
C)neither a molecule nor a compound
D)a molecule but not a compound
E)both a molecule and an ion
Question
An oxygen atom has ____ surrounding a nucleus composed of ____. ​

A)neutrons; electrons and protons
B)electrons; protons and neutrons
C)protons and electrons; neutrons
D)protons; neutrons and electrons
E)electrons and neutrons; protons
Question
The four elements that make up more than 96% of the weight of living organisms are oxygen, carbon, hydrogen and calcium.
Question
The substance H2O is considered to be ____. ​

A)both a molecule and a compound
B)a compound but not a molecule
C)neither a molecule nor a compound
D)a molecule but not a compound
E)both a molecule and an ion
Question
In the representation of hydrogen gas, H-H, the dash represents two electrons being shared equally.
Question
The polarity of water allows it to create a hydration layer that prevents salt from coming back out of solution after it has been dissolved.
Question
The smallest unit that retains the chemical and physical properties of an element is a(n)____. ​

A)proton
B)compound
C)molecule
D)neutron
E)atom
Question
Ice floats in liquid water because there are, on average, fewer hydrogen bonds between molecules in ice than water, resulting in a lower density. ​
Question
Buffers can increase the pH of a solution when acids are added.
Question
Carbon dioxide is an element.
Question
Prolonged iodine deficiency causes ____, a condition in which the thyroid gland enlarges so much that the front of the neck swells significantly. ​

A)gout
B)cancer
C)a goiter
D)anemia
E)granuloma
Question
The attraction between Na+ cations and Cl- anions form ____ that hold the ions together in the compound NaCl. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
<strong>  Figure 2.1 Answer the question using the accompanying figure. The atom depicted in this figure can form ____ covalent bonds with another atom. ​</strong> A)​0 B)​2 C)​4 D)​3 E)​6 <div style=padding-top: 35px>
Figure 2.1
Answer the question using the accompanying figure. The atom depicted in this figure can form ____ covalent bonds with another atom. ​

A)​0
B)​2
C)​4
D)​3
E)​6
Question
An orbital describes the ____ of an electron. ​

A)exact location
B)exact path
C)most frequent locations
D)charge
E)chemical bonds
Question
The chemical linkages that exert an attractive force over the greatest distance are ____.

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
Which element is likely to be chemically unreactive? ​

A)chlorine (7 valence electrons)
B)calcium (2 valence electrons)
C)argon (8 valence electrons)
D)carbon (4 valence electrons)
E)potassium (1 valence electron)
Question
Chemical bonds that are formed when one atom with a partial positive charge (created from unequal sharing of electrons)is electrically attracted to another atom with a partial negative charge (also created from unequal sharing of electrons)are called ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
When the isotope 14C undergoes radioactive decay, a neutron splits into an electron and a proton, with ejection of the electron. This decay produces an atom of ____. ​

A)iron
B)carbon
C)hydrogen
D)oxygen
E)nitrogen
Question
<strong>  Figure 2.1 Answer the question using the accompanying figure. The atomic number of the atom depicted in the figure is ____. ​</strong> A)​4 B)​6 C)​8 D)​12 E)​18 <div style=padding-top: 35px>
Figure 2.1
Answer the question using the accompanying figure. The atomic number of the atom depicted in the figure is ____. ​

A)​4
B)​6
C)​8
D)​12
E)​18
Question
<strong>    Figure 2.2 Answer the question using the accompanying figure. The electrons at the lowest energy level in the neon atom depicted are found in which orbital? ​</strong> A)1 s B)2 s C)2 p x D)2 p y E)2 p z <div style=padding-top: 35px>  
Figure 2.2
Answer the question using the accompanying figure. The electrons at the lowest energy level in the neon atom depicted are found in which orbital? ​

A)1 s
B)2 s
C)2 p x
D)2 p y
E)2 p z
Question
14 C is heavier than 12C because it has ____. ​

A)two more electrons than 12C
B)two more neutrons than 12C
C)two more protons than 12C
D)two more protons and two more electrons than 12C
E)one more proton and one more neutron than 12C
Question
<strong>    Figure 2.2 Answer the question using the accompanying figure. All of the orbitals shown in the neon atom are completely filled with electrons. How many electrons does this neon atom have?</strong> A)​5 B)​6 C)​8 D)​10 E)​16 <div style=padding-top: 35px>  
Figure 2.2
Answer the question using the accompanying figure. All of the orbitals shown in the neon atom are completely filled with electrons. How many electrons does this neon atom have?

A)​5
B)​6
C)​8
D)​10
E)​16
Question
Which element is most likely to accept an electron from another atom? ​

A)chlorine (7 valence electrons)
B)calcium (2 valence electrons)
C)neon (8 valence electrons)
D)carbon (4 valence electrons)
E)potassium (1 valence electron)
Question
A carbon atom with six protons, seven neutrons, and six electrons has a mass number of ____. ​

A)​6
B)​7
C)​12
D)​13
E)​19
Question
The chemical bonds that are formed when atoms share electrons equally are called ____.

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
Which element is most likely to share electrons with other atoms in joint orbitals? ​

A)chlorine (7 valence electrons)
B)calcium (2 valence electrons)
C)argon (8 valence electrons)
D)carbon (4 valence electrons)
E)potassium (1 valence electron)
Question
Sodium has one valence electron in its third energy level. To reach a stable energy configuration, sodium will tend to____. ​

A)take up an electron from another atom
B)move its valence electron to the second energy shell
C)give up an electron to another atom
D)share its valence electron with another atom
E)move an electron from the second energy level to the valence shell
Question
Electronegativity is the tendency of an atom to attract ____ to itself in a chemical bond. ​

A)neutrons
B)protons
C)electrons
D)delta forces
E)polar associations
Question
Which of the three atomic particles are charged? ​

A)electrons and protons
B)neutrons only
C)protons and neutrons
D)electrons only
E)protons, neutrons, and electrons
Question
Metallic ions such as Ca2+, Na+, and Fe3+ readily form ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
Isotopes of the same element differ from each other in the number of ____. ​

A)electrons and protons
B)neutrons only
C)protons and neutrons
D)electrons only
E)protons, neutrons, and electrons
Question
The hydrogen-bond lattice causes water to have an unusually ____ specific heat, an unusually ____ heat of vaporization and an unusually ____ density in solid form. ​

A)high; high; high
B)low; low; low
C)high; low; high
D)high; high; low
E)low; low; high
Question
The formation and breaking of bonds between atoms requires ____. ​

A)a chemical reaction
B)van der Walls forces
C)partial charges
D)an empty valence shell
E)an enzyme
Question
Geckos are able to cling to vertical walls due to ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
A polar covalent bond would be most likely to form between ____. ​

A)atoms with different electronegativities
B)cations and anions
C)atoms with partial positive and partial negative charges
D)atoms with filled valence shells
E)atoms of the same element
Question
A mixture of vegetable oil and water will separate into layers because oil is ____ and forms ____.

A)hydrophobic; nonpolar associations
B)hydrophilic; nonpolar associations
C)hydrophilic; polar associations
D)hydrophobic; polar associations
E)hydrophobic; ionic associations
Question
In contrast to ionic bonds, covalent bonds ____. ​

A)hold atoms together
B)have distinct, three-dimensional forms
C)transfer electrons from one atom to another
D)are rarely broken
E)are transient
Question
<strong>  Figure 2.4 The water strider shown in the figure above is able to stand on water because of the ____ of water.</strong> A)covalent bonds B)surface tension C)van der Waals forces D)density E)hydration layer <div style=padding-top: 35px>
Figure 2.4
The water strider shown in the figure above is able to stand on water because of the ____ of water.

A)covalent bonds
B)surface tension
C)van der Waals forces
D)density
E)hydration layer
Question
In a molecule of methane, CH4, each hydrogen atom shares an orbital with the carbon atom. The total number of shared electrons in CH4 is ____. ​

A)​1
B)​2
C)​4
D)​5
E)​8
Question
Multiple hydrogen bonds together stabilize proteins into a spiral structure called a ____.

A)water lattice
B)alpha helix
C)chemical groups
D)delta minus
E)delta plus
Question
How many calories, as defined in chemistry, are in one calorie, which is the unit used to quantify the amount of energy in the food we eat? ​

A)​10
B)​100
C)​1,000
D)​10,000
E)​100,000
Question
In the presence of water, nonpolar associations form between molecules or regions of molecules that are ____. ​

A)partially charged
B)hydrophobic and hydrophilic
C)hydrophobic
D)fully charged
E)hydrophilic
Question
Which substance would have the most difficulty entering a water lattice? ​

A)table salt (NaCl)
B)a nonpolar molecule
C)a sodium ion
D)a proton (H+)
E)an electron
Question
Which type of chemical linkage is the weakest? ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
<strong>    Figure 2.3 Answer the question using the accompanying figure. The molecule shown is held together by ____. ​</strong> A)polar covalent bonds B)van der Waals forces C)ionic bonds D)hydrogen bonds E)nonpolar covalent bonds <div style=padding-top: 35px>  
Figure 2.3
Answer the question using the accompanying figure. The molecule shown is held together by ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
A molecule of water in the middle of a chunk of ice will usually have ____ hydrogen bonds with other water molecules. ​

A)​2
B)​3
C)​3.4
D)​4
E)6​
Question
Water has an important stabilizing effect on temperature in living organisms and their environments because as water absorbs heat, much of the energy is used to ____ instead of raising the temperature. ​

A)create hydrogen bonds
B)create covalent bonds
C)break surface tension
D)break hydrogen bonds
E)create hydration layers
Question
Molecules such as H-H and O=O are held together by ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
Question
Water has an unusually high boiling point for its molecular weight because water molecules ____. ​

A)are very dense
B)get much heavier as they are heated
C)are held to each other by hydrogen bonds
D)are held together by covalent bonds
E)form hydration layers
Question
When water molecules exposed to the air form hydrogen bonds between adjacent water molecules below and beside them, molecules in the upper layer become more resistant to separating from those underneath.  This property of water is known as ____. ​

A)cohesion
B)adhesion
C)a hydration layer
D)a water lattice
E)surface tension
Question
<strong>  Figure 2.5 The water lattice illustrated in the figure above forms as a result of ____ between water molecules. ​</strong> A)covalent bonds B)hydrogen bonds C)nonpolar interactions D)ionic bonds E)van der Walls forces <div style=padding-top: 35px>
Figure 2.5
The water lattice illustrated in the figure above forms as a result of ____ between water molecules. ​

A)covalent bonds
B)hydrogen bonds
C)nonpolar interactions
D)ionic bonds
E)van der Walls forces
Question
Lemon juice has a pH of 2.0, therefore, ____. ​

A)[H+]
B)[H+] = [OH-]
C)[H+] = 0
D)[OH-] = 0
E)[H+] > [OH-]
Question
Biological membranes are held together mainly by ____. ​

A)hydrogen bonds between lipid molecules
B)hydration layers over lipid molecules
C)exclusion of the nonpolar regions of lipids by water
D)hydrogen bonds between water molecules
E)surface tension at the interface between layers of water molecules
Question
High levels of carbon dioxide in the atmosphere are causing ____. ​

A)the pH of the ocean to increase
B)the pH of the ocean to decrease
C)the natural buffers in the ocean to die
D)increased calcification of the coral reefs
E)increased biodiversity in coral reefs
Question
When sugar dissolves in water, water is acting as a ____ and the sugar molecules are acting as ____. ​

A)solution; solvents
B)solute; solutions
C)solvent; solutes
D)solute; solvents
E)solvent; solutions
Question
In water, NaOH almost completely separates into Na+ and OH- ions. Thus, NaOH is _____. ​

A)a strong acid
B)a strong base
C)a weak acid
D)a weak base
E)neutral
Question
Water has a molecular weight of 18 g per mole, and glucose has a molecular weight of 180 g per mole. Which masses of water and glucose would have an approximately equal number of molecules? ​

A)1 g of water and 180 g of glucose
B)90 g of water and 9 g of glucose
C)180 g of water and 1 g of glucose
D)9 g of water and 90 g of glucose
E)90 g of water and 90 g of glucose
Question
When salt dissolves in water, the water molecules form ____ around the Na+ and Cl- ions. ​

A)covalent bonds
B)hydration layers
C)nonpolar interactions
D)membranes
E)ionic bonds
Question
When added to water at neutral pH (7.0), an acid will ____. ​

A)act as a proton donor, raising the pH of the solution
B)act as a proton acceptor, raising the pH of the solution
C)act as a proton donor, lowering the pH of the solution
D)act as a proton acceptor, lowering the pH of the solution
E)do nothing since the aqueous solution is neutral
Question
Ethanol, the alcohol found in wine and beer, has the molecular formula CH3CH2OH. What is the molecular weight of ethanol if the atomic weight of C=12, H=1 and O=16? ​

A)29 g/mol
B)30 g/mol
C)34 g/mol
D)45 g/mol
E)46 g/mol
Question
Avogadro's number represents the ____. ​

A)number of grams in a mole of substance
B)number of moles in a gram of substance
C)number of atoms in one gram of substance
D)atomic weight of an atom divided by the weight of an atom of that element
E)weight of an atom of an element divided by the atomic weight of that element
Question
A pH of 6 is ____ times more ____ than a pH of 2. ​

A)3; acidic
B)4; acidic
C)3; basic
D)10,000; basic
E)40; basic
Question
Seawater typically is ____. ​

A)highly basic
B)neutral
C)somewhat basic
D)somewhat acidic
E)highly basic
Question
The most common isotope of carbon has an atomic number of 6 and a mass number of 12, while the most common isotope of oxygen has an atomic number of 8 and a mass number of 16. A molecule of CO2 made up of these common isotopes has a molecular weight of ____. ​

A)​28
B)​44
C)​56
D)​14
E)22​
Question
Consider the equilibrium established in the carbonic acid-bicarbonate buffer system, which maintains pH balance in mammalian blood:
          H2CO3 → HCO 3 - + H +
During hypoventilation, breathing rate decreases, and therefore elimination of CO 2 during exhalation decreases. How is optimal blood pH maintained when acid levels increase in our blood from hypoventilating? ​

A)excess H + from the acid react with H2CO3 to decrease pH level
B)excess H + from the acid react with H2CO3 to increase pH level
C)excess H + from the acid react with H2CO3 to maintain pH level
D)excess H + from the acid react with HCO 3 - to increase pH level
E)excess H + from the acid react with HCO 3 - to maintain pH level
Question
Most pH buffers are ____. ​

A)strong acids
B)weak acids or weak bases
C)weak acids
D)strong bases
E)strong acids or strong bases
Question
Without ____, living organisms would often experience major changes in pH in their cells. ​

A)buffers
B)acids
C)surface tension
D)nonpolar bonds
E)bases
Question
Solution A has a pH of 6 and solution B has a pH of 8. Therefore, ____. ​

A)A has 10 times greater H+ concentration than B.
B)B has 10 times greater H+ concentration than A.
C)A has 100 times greater H+ concentration than B.
D)B has 100 times greater H+ concentration than A.
E)A has 1,000 times greater H+ concentration than B.
Question
Pure water has a pH of 7.0, therefore, ____. ​

A)[H+]
B)[H+] = [OH-]
C)[H+] = 0
D)[OH-] = 0
E)[H+] > [OH-]
Question
When added to water, a base will act as a(n)____ and cause the pH of the solution to ____. ​

A)proton acceptor; rise
B)proton donor; rise
C)proton acceptor; fall
D)proton donor; fall
E)acid; fall
Question
A ____ is formed when a ____ is dissolved in a ____. ​

A)solution; solute; solvent
B)solute; solvent; solution
C)solution; solvent; solute
D)solvent; solution; solute
E)solvent; solute; solution
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Deck 2: Life, Chemistry, and Water
1
Hydrogen, atomic number 1, has 3 isotopes, 1H, 2H, 3H. 1H is comprised of one proton, one neutron and one electron.
False
2
Radioactive ____ is commonly used to treat patients with dangerously overactive thyroid glands. ​

A)carbon
B)radium
C)iodine
D)thallium
E)cobalt
C
3
<strong>  Figure 2.1 Answer the question using the accompanying figure. The mass number of the atom depicted in the figure is ____. ​</strong> A)​4 B)​6 C)​8 D)​12 E)​18
Figure 2.1
Answer the question using the accompanying figure. The mass number of the atom depicted in the figure is ____. ​

A)​4
B)​6
C)​8
D)​12
E)​18
D
4
Diluted acetic acid, CH3COOH, is commonly called vinegar. How many atoms of hydrogen are present in one molecule of acetic acid? ​

A)one
B)two
C)three
D)four
E)five
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5
Atoms with atomic numbers between lithium and neon have two energy levels.
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6
Four elements, including ____, make up more than 96% of the mass of most living organisms.

A)sodium
B)potassium
C)phosphorus
D)nitrogen
E)calcium
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7
Proteins in thermophiles must be stabilized by van der Waals forces, because hydrogen bonds cannot be maintained at high temperatures
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8
Acid precipitation can have a pH as low as 3.
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9
A trace element is one found in specific organisms in ____ quantities and is ____ for normal biological functions.

A)moderate; unnecessary
B)moderate; vital
C)small; unnecessary
D)large; unnecessary
E)small; vital ​
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10
The substance O2 is considered to be ____. ​

A)both a molecule and a compound
B)a compound but not a molecule
C)neither a molecule nor a compound
D)a molecule but not a compound
E)both a molecule and an ion
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11
An oxygen atom has ____ surrounding a nucleus composed of ____. ​

A)neutrons; electrons and protons
B)electrons; protons and neutrons
C)protons and electrons; neutrons
D)protons; neutrons and electrons
E)electrons and neutrons; protons
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12
The four elements that make up more than 96% of the weight of living organisms are oxygen, carbon, hydrogen and calcium.
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13
The substance H2O is considered to be ____. ​

A)both a molecule and a compound
B)a compound but not a molecule
C)neither a molecule nor a compound
D)a molecule but not a compound
E)both a molecule and an ion
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14
In the representation of hydrogen gas, H-H, the dash represents two electrons being shared equally.
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15
The polarity of water allows it to create a hydration layer that prevents salt from coming back out of solution after it has been dissolved.
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16
The smallest unit that retains the chemical and physical properties of an element is a(n)____. ​

A)proton
B)compound
C)molecule
D)neutron
E)atom
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17
Ice floats in liquid water because there are, on average, fewer hydrogen bonds between molecules in ice than water, resulting in a lower density. ​
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18
Buffers can increase the pH of a solution when acids are added.
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19
Carbon dioxide is an element.
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20
Prolonged iodine deficiency causes ____, a condition in which the thyroid gland enlarges so much that the front of the neck swells significantly. ​

A)gout
B)cancer
C)a goiter
D)anemia
E)granuloma
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21
The attraction between Na+ cations and Cl- anions form ____ that hold the ions together in the compound NaCl. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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22
<strong>  Figure 2.1 Answer the question using the accompanying figure. The atom depicted in this figure can form ____ covalent bonds with another atom. ​</strong> A)​0 B)​2 C)​4 D)​3 E)​6
Figure 2.1
Answer the question using the accompanying figure. The atom depicted in this figure can form ____ covalent bonds with another atom. ​

A)​0
B)​2
C)​4
D)​3
E)​6
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23
An orbital describes the ____ of an electron. ​

A)exact location
B)exact path
C)most frequent locations
D)charge
E)chemical bonds
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24
The chemical linkages that exert an attractive force over the greatest distance are ____.

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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25
Which element is likely to be chemically unreactive? ​

A)chlorine (7 valence electrons)
B)calcium (2 valence electrons)
C)argon (8 valence electrons)
D)carbon (4 valence electrons)
E)potassium (1 valence electron)
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26
Chemical bonds that are formed when one atom with a partial positive charge (created from unequal sharing of electrons)is electrically attracted to another atom with a partial negative charge (also created from unequal sharing of electrons)are called ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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27
When the isotope 14C undergoes radioactive decay, a neutron splits into an electron and a proton, with ejection of the electron. This decay produces an atom of ____. ​

A)iron
B)carbon
C)hydrogen
D)oxygen
E)nitrogen
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28
<strong>  Figure 2.1 Answer the question using the accompanying figure. The atomic number of the atom depicted in the figure is ____. ​</strong> A)​4 B)​6 C)​8 D)​12 E)​18
Figure 2.1
Answer the question using the accompanying figure. The atomic number of the atom depicted in the figure is ____. ​

A)​4
B)​6
C)​8
D)​12
E)​18
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29
<strong>    Figure 2.2 Answer the question using the accompanying figure. The electrons at the lowest energy level in the neon atom depicted are found in which orbital? ​</strong> A)1 s B)2 s C)2 p x D)2 p y E)2 p z  
Figure 2.2
Answer the question using the accompanying figure. The electrons at the lowest energy level in the neon atom depicted are found in which orbital? ​

A)1 s
B)2 s
C)2 p x
D)2 p y
E)2 p z
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30
14 C is heavier than 12C because it has ____. ​

A)two more electrons than 12C
B)two more neutrons than 12C
C)two more protons than 12C
D)two more protons and two more electrons than 12C
E)one more proton and one more neutron than 12C
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31
<strong>    Figure 2.2 Answer the question using the accompanying figure. All of the orbitals shown in the neon atom are completely filled with electrons. How many electrons does this neon atom have?</strong> A)​5 B)​6 C)​8 D)​10 E)​16  
Figure 2.2
Answer the question using the accompanying figure. All of the orbitals shown in the neon atom are completely filled with electrons. How many electrons does this neon atom have?

A)​5
B)​6
C)​8
D)​10
E)​16
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32
Which element is most likely to accept an electron from another atom? ​

A)chlorine (7 valence electrons)
B)calcium (2 valence electrons)
C)neon (8 valence electrons)
D)carbon (4 valence electrons)
E)potassium (1 valence electron)
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33
A carbon atom with six protons, seven neutrons, and six electrons has a mass number of ____. ​

A)​6
B)​7
C)​12
D)​13
E)​19
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34
The chemical bonds that are formed when atoms share electrons equally are called ____.

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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35
Which element is most likely to share electrons with other atoms in joint orbitals? ​

A)chlorine (7 valence electrons)
B)calcium (2 valence electrons)
C)argon (8 valence electrons)
D)carbon (4 valence electrons)
E)potassium (1 valence electron)
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36
Sodium has one valence electron in its third energy level. To reach a stable energy configuration, sodium will tend to____. ​

A)take up an electron from another atom
B)move its valence electron to the second energy shell
C)give up an electron to another atom
D)share its valence electron with another atom
E)move an electron from the second energy level to the valence shell
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37
Electronegativity is the tendency of an atom to attract ____ to itself in a chemical bond. ​

A)neutrons
B)protons
C)electrons
D)delta forces
E)polar associations
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38
Which of the three atomic particles are charged? ​

A)electrons and protons
B)neutrons only
C)protons and neutrons
D)electrons only
E)protons, neutrons, and electrons
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39
Metallic ions such as Ca2+, Na+, and Fe3+ readily form ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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40
Isotopes of the same element differ from each other in the number of ____. ​

A)electrons and protons
B)neutrons only
C)protons and neutrons
D)electrons only
E)protons, neutrons, and electrons
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41
The hydrogen-bond lattice causes water to have an unusually ____ specific heat, an unusually ____ heat of vaporization and an unusually ____ density in solid form. ​

A)high; high; high
B)low; low; low
C)high; low; high
D)high; high; low
E)low; low; high
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42
The formation and breaking of bonds between atoms requires ____. ​

A)a chemical reaction
B)van der Walls forces
C)partial charges
D)an empty valence shell
E)an enzyme
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43
Geckos are able to cling to vertical walls due to ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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44
A polar covalent bond would be most likely to form between ____. ​

A)atoms with different electronegativities
B)cations and anions
C)atoms with partial positive and partial negative charges
D)atoms with filled valence shells
E)atoms of the same element
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45
A mixture of vegetable oil and water will separate into layers because oil is ____ and forms ____.

A)hydrophobic; nonpolar associations
B)hydrophilic; nonpolar associations
C)hydrophilic; polar associations
D)hydrophobic; polar associations
E)hydrophobic; ionic associations
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46
In contrast to ionic bonds, covalent bonds ____. ​

A)hold atoms together
B)have distinct, three-dimensional forms
C)transfer electrons from one atom to another
D)are rarely broken
E)are transient
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47
<strong>  Figure 2.4 The water strider shown in the figure above is able to stand on water because of the ____ of water.</strong> A)covalent bonds B)surface tension C)van der Waals forces D)density E)hydration layer
Figure 2.4
The water strider shown in the figure above is able to stand on water because of the ____ of water.

A)covalent bonds
B)surface tension
C)van der Waals forces
D)density
E)hydration layer
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48
In a molecule of methane, CH4, each hydrogen atom shares an orbital with the carbon atom. The total number of shared electrons in CH4 is ____. ​

A)​1
B)​2
C)​4
D)​5
E)​8
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49
Multiple hydrogen bonds together stabilize proteins into a spiral structure called a ____.

A)water lattice
B)alpha helix
C)chemical groups
D)delta minus
E)delta plus
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50
How many calories, as defined in chemistry, are in one calorie, which is the unit used to quantify the amount of energy in the food we eat? ​

A)​10
B)​100
C)​1,000
D)​10,000
E)​100,000
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51
In the presence of water, nonpolar associations form between molecules or regions of molecules that are ____. ​

A)partially charged
B)hydrophobic and hydrophilic
C)hydrophobic
D)fully charged
E)hydrophilic
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52
Which substance would have the most difficulty entering a water lattice? ​

A)table salt (NaCl)
B)a nonpolar molecule
C)a sodium ion
D)a proton (H+)
E)an electron
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53
Which type of chemical linkage is the weakest? ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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54
<strong>    Figure 2.3 Answer the question using the accompanying figure. The molecule shown is held together by ____. ​</strong> A)polar covalent bonds B)van der Waals forces C)ionic bonds D)hydrogen bonds E)nonpolar covalent bonds  
Figure 2.3
Answer the question using the accompanying figure. The molecule shown is held together by ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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55
A molecule of water in the middle of a chunk of ice will usually have ____ hydrogen bonds with other water molecules. ​

A)​2
B)​3
C)​3.4
D)​4
E)6​
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56
Water has an important stabilizing effect on temperature in living organisms and their environments because as water absorbs heat, much of the energy is used to ____ instead of raising the temperature. ​

A)create hydrogen bonds
B)create covalent bonds
C)break surface tension
D)break hydrogen bonds
E)create hydration layers
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57
Molecules such as H-H and O=O are held together by ____. ​

A)polar covalent bonds
B)van der Waals forces
C)ionic bonds
D)hydrogen bonds
E)nonpolar covalent bonds
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58
Water has an unusually high boiling point for its molecular weight because water molecules ____. ​

A)are very dense
B)get much heavier as they are heated
C)are held to each other by hydrogen bonds
D)are held together by covalent bonds
E)form hydration layers
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59
When water molecules exposed to the air form hydrogen bonds between adjacent water molecules below and beside them, molecules in the upper layer become more resistant to separating from those underneath.  This property of water is known as ____. ​

A)cohesion
B)adhesion
C)a hydration layer
D)a water lattice
E)surface tension
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60
<strong>  Figure 2.5 The water lattice illustrated in the figure above forms as a result of ____ between water molecules. ​</strong> A)covalent bonds B)hydrogen bonds C)nonpolar interactions D)ionic bonds E)van der Walls forces
Figure 2.5
The water lattice illustrated in the figure above forms as a result of ____ between water molecules. ​

A)covalent bonds
B)hydrogen bonds
C)nonpolar interactions
D)ionic bonds
E)van der Walls forces
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61
Lemon juice has a pH of 2.0, therefore, ____. ​

A)[H+]
B)[H+] = [OH-]
C)[H+] = 0
D)[OH-] = 0
E)[H+] > [OH-]
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62
Biological membranes are held together mainly by ____. ​

A)hydrogen bonds between lipid molecules
B)hydration layers over lipid molecules
C)exclusion of the nonpolar regions of lipids by water
D)hydrogen bonds between water molecules
E)surface tension at the interface between layers of water molecules
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63
High levels of carbon dioxide in the atmosphere are causing ____. ​

A)the pH of the ocean to increase
B)the pH of the ocean to decrease
C)the natural buffers in the ocean to die
D)increased calcification of the coral reefs
E)increased biodiversity in coral reefs
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64
When sugar dissolves in water, water is acting as a ____ and the sugar molecules are acting as ____. ​

A)solution; solvents
B)solute; solutions
C)solvent; solutes
D)solute; solvents
E)solvent; solutions
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65
In water, NaOH almost completely separates into Na+ and OH- ions. Thus, NaOH is _____. ​

A)a strong acid
B)a strong base
C)a weak acid
D)a weak base
E)neutral
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66
Water has a molecular weight of 18 g per mole, and glucose has a molecular weight of 180 g per mole. Which masses of water and glucose would have an approximately equal number of molecules? ​

A)1 g of water and 180 g of glucose
B)90 g of water and 9 g of glucose
C)180 g of water and 1 g of glucose
D)9 g of water and 90 g of glucose
E)90 g of water and 90 g of glucose
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67
When salt dissolves in water, the water molecules form ____ around the Na+ and Cl- ions. ​

A)covalent bonds
B)hydration layers
C)nonpolar interactions
D)membranes
E)ionic bonds
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68
When added to water at neutral pH (7.0), an acid will ____. ​

A)act as a proton donor, raising the pH of the solution
B)act as a proton acceptor, raising the pH of the solution
C)act as a proton donor, lowering the pH of the solution
D)act as a proton acceptor, lowering the pH of the solution
E)do nothing since the aqueous solution is neutral
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69
Ethanol, the alcohol found in wine and beer, has the molecular formula CH3CH2OH. What is the molecular weight of ethanol if the atomic weight of C=12, H=1 and O=16? ​

A)29 g/mol
B)30 g/mol
C)34 g/mol
D)45 g/mol
E)46 g/mol
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70
Avogadro's number represents the ____. ​

A)number of grams in a mole of substance
B)number of moles in a gram of substance
C)number of atoms in one gram of substance
D)atomic weight of an atom divided by the weight of an atom of that element
E)weight of an atom of an element divided by the atomic weight of that element
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71
A pH of 6 is ____ times more ____ than a pH of 2. ​

A)3; acidic
B)4; acidic
C)3; basic
D)10,000; basic
E)40; basic
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72
Seawater typically is ____. ​

A)highly basic
B)neutral
C)somewhat basic
D)somewhat acidic
E)highly basic
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73
The most common isotope of carbon has an atomic number of 6 and a mass number of 12, while the most common isotope of oxygen has an atomic number of 8 and a mass number of 16. A molecule of CO2 made up of these common isotopes has a molecular weight of ____. ​

A)​28
B)​44
C)​56
D)​14
E)22​
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74
Consider the equilibrium established in the carbonic acid-bicarbonate buffer system, which maintains pH balance in mammalian blood:
          H2CO3 → HCO 3 - + H +
During hypoventilation, breathing rate decreases, and therefore elimination of CO 2 during exhalation decreases. How is optimal blood pH maintained when acid levels increase in our blood from hypoventilating? ​

A)excess H + from the acid react with H2CO3 to decrease pH level
B)excess H + from the acid react with H2CO3 to increase pH level
C)excess H + from the acid react with H2CO3 to maintain pH level
D)excess H + from the acid react with HCO 3 - to increase pH level
E)excess H + from the acid react with HCO 3 - to maintain pH level
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75
Most pH buffers are ____. ​

A)strong acids
B)weak acids or weak bases
C)weak acids
D)strong bases
E)strong acids or strong bases
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76
Without ____, living organisms would often experience major changes in pH in their cells. ​

A)buffers
B)acids
C)surface tension
D)nonpolar bonds
E)bases
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77
Solution A has a pH of 6 and solution B has a pH of 8. Therefore, ____. ​

A)A has 10 times greater H+ concentration than B.
B)B has 10 times greater H+ concentration than A.
C)A has 100 times greater H+ concentration than B.
D)B has 100 times greater H+ concentration than A.
E)A has 1,000 times greater H+ concentration than B.
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78
Pure water has a pH of 7.0, therefore, ____. ​

A)[H+]
B)[H+] = [OH-]
C)[H+] = 0
D)[OH-] = 0
E)[H+] > [OH-]
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79
When added to water, a base will act as a(n)____ and cause the pH of the solution to ____. ​

A)proton acceptor; rise
B)proton donor; rise
C)proton acceptor; fall
D)proton donor; fall
E)acid; fall
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80
A ____ is formed when a ____ is dissolved in a ____. ​

A)solution; solute; solvent
B)solute; solvent; solution
C)solution; solvent; solute
D)solvent; solution; solute
E)solvent; solute; solution
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