Deck 2: The Chemical Context of Life
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ملء الشاشة (f)
Deck 2: The Chemical Context of Life
1
Which of the following properties is common among elements in the same column of the periodic table?
A)They have the same number of protons.
B)They have the same number of neutrons.
C)They have the same number of electrons.
D)They have the same number of electrons in their valence shell.
E)They have the same number of electron shells.
A)They have the same number of protons.
B)They have the same number of neutrons.
C)They have the same number of electrons.
D)They have the same number of electrons in their valence shell.
E)They have the same number of electron shells.
D
2
Oxygen has an atomic number of 8 and a mass number of 16.What is the atomic mass of an oxygen atom?
A)approximately 8 grams
B)approximately 8 daltons
C)approximately 16 grams
D)approximately 16 daltons
E)approximately 24 daltons
A)approximately 8 grams
B)approximately 8 daltons
C)approximately 16 grams
D)approximately 16 daltons
E)approximately 24 daltons
D
3
Which of the following properties is shared by elements in the same row of the periodic table?
A)They have the same number of protons.
B)They have the same number of neutrons.
C)They have the same number of electrons.
D)They have the same number of electrons in their valence shell.
E)They have the same number of electron shells.
A)They have the same number of protons.
B)They have the same number of neutrons.
C)They have the same number of electrons.
D)They have the same number of electrons in their valence shell.
E)They have the same number of electron shells.
E
4
Which of the following best describes how an atom with atomic number 12 would behave in terms of forming bonds with other elements?
A)It would form ions with a +1 charge.
B)It would form ions with a +2 charge.
C)It would form ions with a -1 charge.
D)It would form ions with a -2 charge.
E)It would form two covalent bonds with other atoms.
A)It would form ions with a +1 charge.
B)It would form ions with a +2 charge.
C)It would form ions with a -1 charge.
D)It would form ions with a -2 charge.
E)It would form two covalent bonds with other atoms.
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5
The atomic number of nitrogen is 7.Nitrogen-15 is heavier than nitrogen-14 because the atomic nucleus of nitrogen-15 contains how many neutrons?
A)15
B)7
C)8
D)14
A)15
B)7
C)8
D)14
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6
The chemical behavior of an atom depends primarily upon which of the following?
A)the number of neutrons in the nucleus
B)the number of protons in the nucleus
C)the number of electrons in the valence shell
D)the total number of electrons contained by the atom
E)the number of electron shells contained by the atom
A)the number of neutrons in the nucleus
B)the number of protons in the nucleus
C)the number of electrons in the valence shell
D)the total number of electrons contained by the atom
E)the number of electron shells contained by the atom
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7
The nucleus of a nitrogen atom contains 8 neutrons and 7 protons.Which of the following is a correct statement concerning nitrogen?
A)The nitrogen atom has a mass number of 14 and an atomic number of 7.
B)The nitrogen atom has a mass number of 15 and an atomic number of 7.
C)The nitrogen atom has a mass number of 15 and an atomic number of 8.
D)The nitrogen atom has a mass number of 15 and an atomic number of 15.
A)The nitrogen atom has a mass number of 14 and an atomic number of 7.
B)The nitrogen atom has a mass number of 15 and an atomic number of 7.
C)The nitrogen atom has a mass number of 15 and an atomic number of 8.
D)The nitrogen atom has a mass number of 15 and an atomic number of 15.
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8
Argon has atomic number 18.Which of the following statements about argon is true?
A)It has 10 electrons in its outer electron shell.
B)It is inert.
C)It has an atomic mass of 18 daltons.
D)It resides in the first column of the periodic table.
A)It has 10 electrons in its outer electron shell.
B)It is inert.
C)It has an atomic mass of 18 daltons.
D)It resides in the first column of the periodic table.
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9
Trace elements are required by organisms in only minute quantities (less than 0.01% of mass).Which of the following is a trace element that is required by all organisms?
A)iron
B)calcium
C)iodine
D)sodium
E)potassium
A)iron
B)calcium
C)iodine
D)sodium
E)potassium
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10
Trace elements are required by organisms in only minute quantities (less than 0.01% of mass).Which of the following is a trace element that is required by humans and other vertebrates?
A)nitrogen
B)calcium
C)iodine
D)potassium
E)phosphorus
A)nitrogen
B)calcium
C)iodine
D)potassium
E)phosphorus
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11
Molybdenum has an atomic number of 42.Several common isotopes exist,with mass numbers of 92,94,95,96,97,98,and 100.Therefore,which of the following is true?
A)The isotopes of molybdenum can have between 50 and 58 neutrons.
B)The isotopes of molybdenum have different numbers of valence electrons.
C)The isotopes of molybdenum can have between 50 and 58 protons.
D)The isotopes of molybdenum can have between 92 and 100 electrons.
A)The isotopes of molybdenum can have between 50 and 58 neutrons.
B)The isotopes of molybdenum have different numbers of valence electrons.
C)The isotopes of molybdenum can have between 50 and 58 protons.
D)The isotopes of molybdenum can have between 92 and 100 electrons.
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12
Which of the following is the key characteristic that is ultimately responsible for the unique chemical properties of each element?
A)Each element has a unique atomic mass.
B)Each element has a unique atomic number.
C)Each element has a unique number of protons.
D)Each element has a unique number of neutrons.
A)Each element has a unique atomic mass.
B)Each element has a unique atomic number.
C)Each element has a unique number of protons.
D)Each element has a unique number of neutrons.
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13
The left-to-right position of an element in the first three rows of the periodic table indicates which of the following properties of the element?
A)the total number of electrons in the element
B)the total number of protons in the element
C)the total number of neutrons in the element
D)the number of electron orbitals in the element
E)the number of electrons in the valence shell
A)the total number of electrons in the element
B)the total number of protons in the element
C)the total number of neutrons in the element
D)the number of electron orbitals in the element
E)the number of electrons in the valence shell
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14
Phosphorus-32,a radioactive isotope of phosphorus-31 (atomic number 15),undergoes a form of radioactive decay whereby a neutron turns into a proton,which is retained in the nucleus and emits radiation in the form of an electron.What is the product of such radioactive decay of phosphorus-32?
A)phosphorus-31
B)a positively charged phosphorus-31 ion
C)a negatively charged phosphorus-32 ion
D)sulfur-32 (atomic number 16)
A)phosphorus-31
B)a positively charged phosphorus-31 ion
C)a negatively charged phosphorus-32 ion
D)sulfur-32 (atomic number 16)
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15
Given only a mass number,one can deduce the number of ________ in each atom of an element.
A)protons
B)neutrons
C)electrons
D)protons plus electrons
E)protons plus neutrons
A)protons
B)neutrons
C)electrons
D)protons plus electrons
E)protons plus neutrons
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16
An atom has 6 electrons in its outer shell.How many unpaired electrons does it have?
A)0
B)2
C)4
D)6
A)0
B)2
C)4
D)6
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17
Two atoms that have the same mass number must have the same
A)atomic number.
B)number of electrons.
C)number of protons.
D)number of protons plus neutrons.
E)chemical properties.
A)atomic number.
B)number of electrons.
C)number of protons.
D)number of protons plus neutrons.
E)chemical properties.
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18
Sulfur has an atomic number of 16 and a mass number of 32.How many electrons are needed to complete the valence shell of a sulfur atom?
A)0
B)1
C)2
D)6
E)8
A)0
B)1
C)2
D)6
E)8
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19
Which four of the 92 naturally occurring elements make up approximately 96% of the mass of the human body?
A)carbon,sodium,hydrogen,nitrogen
B)carbon,oxygen,phosphorus,hydrogen
C)oxygen,hydrogen,calcium,nitrogen
D)carbon,hydrogen,nitrogen,oxygen
E)carbon,oxygen,nitrogen,calcium
A)carbon,sodium,hydrogen,nitrogen
B)carbon,oxygen,phosphorus,hydrogen
C)oxygen,hydrogen,calcium,nitrogen
D)carbon,hydrogen,nitrogen,oxygen
E)carbon,oxygen,nitrogen,calcium
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20
The atomic number of sulfur is 16,which indicates that a sulfur atom contains
A)16 neutrons.
B)16 protons.
C)16 protons and 16 neutrons.
D)8 electrons in its outermost electron shell.
E)8 protons and 8 neutrons.
A)16 neutrons.
B)16 protons.
C)16 protons and 16 neutrons.
D)8 electrons in its outermost electron shell.
E)8 protons and 8 neutrons.
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21
The most stable interaction between magnesium (atomic number 12)and chlorine (atomic number 17)forms which of the following molecules?
A)MgCl,in which atoms are joined by covalent bonds
B)MgCl,in which atoms are joined by ionic bonds
C)Mg2Cl,in which atoms are joined by ionic bonds
D)MgCl2,in which atoms are joined by covalent bonds
E)MgCl2,in which atoms are joined by ionic bonds
A)MgCl,in which atoms are joined by covalent bonds
B)MgCl,in which atoms are joined by ionic bonds
C)Mg2Cl,in which atoms are joined by ionic bonds
D)MgCl2,in which atoms are joined by covalent bonds
E)MgCl2,in which atoms are joined by ionic bonds
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22
A covalent chemical bond is one in which
A)electrons are removed from one atom and transferred to another atom so that the two atoms become oppositely charged.
B)protons and neutrons are shared by two atoms so as to satisfy the requirements of both atoms.
C)outer-shell electrons of two atoms are shared so as to occupy the outer electron shells of both atoms.
D)outer-shell electrons of one atom are transferred to fill the inner electron shell of another atom.
A)electrons are removed from one atom and transferred to another atom so that the two atoms become oppositely charged.
B)protons and neutrons are shared by two atoms so as to satisfy the requirements of both atoms.
C)outer-shell electrons of two atoms are shared so as to occupy the outer electron shells of both atoms.
D)outer-shell electrons of one atom are transferred to fill the inner electron shell of another atom.
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23
Nitrogen (N)is much more electronegative than hydrogen (H).Which of the following statements about the atoms in ammonia (NH3)is correct?
A)Each hydrogen atom has a partial positive charge;the nitrogen atom has a partial negative charge.
B)The nitrogen atom has a full positive charge;each hydrogen atom has a full positive charge.
C)Each hydrogen atom has a partial negative charge;the nitrogen atom has a full positive charge.
D)The nitrogen atom has a partial positive charge;each hydrogen atom has a partial negative charge.
E)There are nonpolar covalent bonds between each hydrogen atom and the nitrogen atom.
A)Each hydrogen atom has a partial positive charge;the nitrogen atom has a partial negative charge.
B)The nitrogen atom has a full positive charge;each hydrogen atom has a full positive charge.
C)Each hydrogen atom has a partial negative charge;the nitrogen atom has a full positive charge.
D)The nitrogen atom has a partial positive charge;each hydrogen atom has a partial negative charge.
E)There are nonpolar covalent bonds between each hydrogen atom and the nitrogen atom.
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24
In ammonium chloride salt (NH4Cl),the anion is a single chloride ion, (Cl¯).What is the cation of NH4Cl salt?
A)N,with a charge of +1
B)NH,with a charge of +1
C)H3,with a charge of +1
D)NH4,with a charge of +1
E)NH4,with a charge of +4
A)N,with a charge of +1
B)NH,with a charge of +1
C)H3,with a charge of +1
D)NH4,with a charge of +1
E)NH4,with a charge of +4
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25
A covalent bond is formed by
A)sharing of a pair of electrons between two atoms.
B)sharing of a single electron between two atoms.
C)sharing of a pair of protons between two atoms.
D)transfer of an electron from one atom to another.
A)sharing of a pair of electrons between two atoms.
B)sharing of a single electron between two atoms.
C)sharing of a pair of protons between two atoms.
D)transfer of an electron from one atom to another.
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26
Which bond or interaction would be most difficult to disrupt when compounds are put into water?
A)covalent bond
B)hydrogen bond
C)van der Waals interaction
D)ionic bond
A)covalent bond
B)hydrogen bond
C)van der Waals interaction
D)ionic bond
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27
How does the formation of covalent bonds differ from the formation of ionic bonds between two atoms?
A)Covalent bonds are formed between atoms to form molecules;ionic bonds are formed between atoms to form compounds.
B)Covalent bonds involve the sharing of pairs of electrons between atoms;ionic bonds involve the sharing of single electrons between atoms.
C)Covalent bonds involve the sharing of electrons between atoms;ionic bonds involve the transfer of electrons from one atom to the other.
D)Covalent bonds involve the transfer of electrons from one atom to the other;ionic bonds involve the electrical attraction between atoms.
A)Covalent bonds are formed between atoms to form molecules;ionic bonds are formed between atoms to form compounds.
B)Covalent bonds involve the sharing of pairs of electrons between atoms;ionic bonds involve the sharing of single electrons between atoms.
C)Covalent bonds involve the sharing of electrons between atoms;ionic bonds involve the transfer of electrons from one atom to the other.
D)Covalent bonds involve the transfer of electrons from one atom to the other;ionic bonds involve the electrical attraction between atoms.
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28
How many electron pairs are shared between the two carbon atoms in a molecule that has the formula C2H4?
A)0
B)1
C)2
D)3
E)4
A)0
B)1
C)2
D)3
E)4
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29
Unequal sharing of electrons between atoms will result in which of the following interactions?
A)a nonpolar covalent bond
B)a polar covalent bond
C)an ionic bond
D)a hydrophobic interaction
A)a nonpolar covalent bond
B)a polar covalent bond
C)an ionic bond
D)a hydrophobic interaction
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30
When two atoms are equally electronegative,they will interact to form
A)hydrogen bonds.
B)van der Waals interactions.
C)polar covalent bonds.
D)nonpolar covalent bonds.
E)ionic bonds.
A)hydrogen bonds.
B)van der Waals interactions.
C)polar covalent bonds.
D)nonpolar covalent bonds.
E)ionic bonds.
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31
What type of bonding or interaction may occur among a broad array of molecules with various physical properties (polar,nonpolar,hydrophilic,hydrophobic)?
A)covalent bonding
B)polar covalent bonding
C)ionic bonding
D)hydrogen bonding
E)van der Waals interactions
A)covalent bonding
B)polar covalent bonding
C)ionic bonding
D)hydrogen bonding
E)van der Waals interactions
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32
A covalent bond is likely to be polar when
A)one of the atoms sharing electrons is much more electronegative than the other atom.
B)the two atoms sharing electrons are equally electronegative.
C)oxygen is one of the two atoms sharing electrons.
D)the two atoms sharing electrons are the same element.
A)one of the atoms sharing electrons is much more electronegative than the other atom.
B)the two atoms sharing electrons are equally electronegative.
C)oxygen is one of the two atoms sharing electrons.
D)the two atoms sharing electrons are the same element.
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33
Sulfur (atomic number 16)will have chemical properties most similar to
A)carbon (atomic number 6).
B)nitrogen (atomic number 7).
C)oxygen (atomic number 8).
D)phosphorous (atomic number 15).
E)chlorine (atomic number 17).
A)carbon (atomic number 6).
B)nitrogen (atomic number 7).
C)oxygen (atomic number 8).
D)phosphorous (atomic number 15).
E)chlorine (atomic number 17).
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34
What is the maximum number of covalent bonds an element with atomic number 8 can make with hydrogen?
A)1
B)2
C)3
D)4
E)6
A)1
B)2
C)3
D)4
E)6
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35
The atomic number of chlorine is 17.The atomic number of calcium is 20.What is the chemical formula for calcium chloride?
A)CaCl
B)CaCl2
C)Ca2Cl
D)Ca2Cl2
E)CaCl3
A)CaCl
B)CaCl2
C)Ca2Cl
D)Ca2Cl2
E)CaCl3
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36
Which of the following are the strongest molecular interactions?
A)van der Waals interactions
B)hydrogen bonds
C)ionic bonds in an aqueous environment
D)covalent bonds
A)van der Waals interactions
B)hydrogen bonds
C)ionic bonds in an aqueous environment
D)covalent bonds
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37
Which of the following molecules contains polar covalent bonds?
A)H2
B)O2
C)CH4
D)H2O
A)H2
B)O2
C)CH4
D)H2O
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38
If an atom of sulfur (atomic number 16)were allowed to react with atoms of hydrogen (atomic number 1),which of the following molecules would be formed?
A)S-H
B)H-S-H
C)

D)

E)H = S = H
A)S-H
B)H-S-H
C)

D)

E)H = S = H
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39
How many electron pairs are shared between the two carbon atoms in a molecule that has the formula C2H6?
A)0
B)1
C)2
D)3
E)4
A)0
B)1
C)2
D)3
E)4
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40
An ionic bond is formed by
A)sharing of a pair of electrons between two atoms.
B)sharing of a single electron between two atoms.
C)sharing of a pair of protons between two atoms.
D)transfer of an electron from one atom to another.
E)transfer of a proton from one atom to another.
A)sharing of a pair of electrons between two atoms.
B)sharing of a single electron between two atoms.
C)sharing of a pair of protons between two atoms.
D)transfer of an electron from one atom to another.
E)transfer of a proton from one atom to another.
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41
Which of the following takes place as an ice cube cools a drink?
A)Molecular collisions in the drink increase.
B)Kinetic energy in the drink decreases.
C)A calorie of heat energy is transferred from the ice to the water of the drink.
D)The specific heat of the water in the drink decreases.
E)Evaporation of the water in the drink increases.
A)Molecular collisions in the drink increase.
B)Kinetic energy in the drink decreases.
C)A calorie of heat energy is transferred from the ice to the water of the drink.
D)The specific heat of the water in the drink decreases.
E)Evaporation of the water in the drink increases.
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42
Which of the following correctly describes any reaction that has reached chemical equilibrium?
A)The concentration of the reactants equals the concentration of the products.
B)The rate of the forward reaction is equal to the rate of the reverse reaction.
C)All of the reactants have been converted to the products of the reaction.
D)All of the products have been converted to the reactants of the reaction.
A)The concentration of the reactants equals the concentration of the products.
B)The rate of the forward reaction is equal to the rate of the reverse reaction.
C)All of the reactants have been converted to the products of the reaction.
D)All of the products have been converted to the reactants of the reaction.
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43
In an aqueous solution,water molecules associate with one another through which of the following?
A)hydrogen bonds
B)ionic bonds
C)polar covalent bonds
D)covalent bonds
E)van der Waals interactions
A)hydrogen bonds
B)ionic bonds
C)polar covalent bonds
D)covalent bonds
E)van der Waals interactions
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44
The attraction between the slight negative charge of one water molecule to the slight positive charge of another water molecule results in which of the following interactions?
A)a covalent bond
B)a hydrogen bond
C)an ionic bond
D)a hydrophilic bond
E)a van der Waals interaction
A)a covalent bond
B)a hydrogen bond
C)an ionic bond
D)a hydrophilic bond
E)a van der Waals interaction
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45
The nutritional information on a cereal box shows that one serving of a dry cereal has 200 kilocalories.If a person were to ignite one serving of the cereal in a bowl,the amount of heat given off would be sufficient to raise the temperature of 20 kg of water how many degrees Celsius?
A)0)2°C
B)1)0°C
C)2)0°C
D)10.0°C
E)20.0°C
A)0)2°C
B)1)0°C
C)2)0°C
D)10.0°C
E)20.0°C
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46
What is the maximum number of hydrogen atoms that can be covalently bonded in a molecule containing two carbon atoms?
A)2
B)3
C)4
D)6
E)8
A)2
B)3
C)4
D)6
E)8
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47
Glucose has a molecular mass of 180 g/mol.How many glucose molecules are present in 100 grams of glucose?
A)100 × 1023
B)(6.02/180)× 1023
C)(6.02/100)× 1023
D)(100 × 6.02)× 1023
E)(100/180)× 6.02 × 1023
A)100 × 1023
B)(6.02/180)× 1023
C)(6.02/100)× 1023
D)(100 × 6.02)× 1023
E)(100/180)× 6.02 × 1023
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48
Hydrophobic substances such as vegetable oil are
A)nonpolar substances that repel water molecules.
B)nonpolar substances that have an attraction for water molecules.
C)polar substances that repel water molecules.
D)polar substances that have an affinity for water.
A)nonpolar substances that repel water molecules.
B)nonpolar substances that have an attraction for water molecules.
C)polar substances that repel water molecules.
D)polar substances that have an affinity for water.
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49
If a salamander clings to surfaces through hydrogen bonds,it would have the most difficulty clinging to which of the following surfaces?
A)a surface coated with a thin film of water
B)a surface coated with a thin film of vinegar (acetic acid)
C)a surface coated with a thin film of vegetable oil
D)a surface coated with a thin film of ammonia (NH3)
A)a surface coated with a thin film of water
B)a surface coated with a thin film of vinegar (acetic acid)
C)a surface coated with a thin film of vegetable oil
D)a surface coated with a thin film of ammonia (NH3)
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50
Which of the following are considered compounds?
A)H2O,O2,and CH4
B)H2O and O2
C)O2 and CH4
D)CH4 and O2,but not H2O
E)H2O and CH4,but not O2
A)H2O,O2,and CH4
B)H2O and O2
C)O2 and CH4
D)CH4 and O2,but not H2O
E)H2O and CH4,but not O2
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51
Sulfur is in the same column of the periodic table as oxygen but has electronegativity similar to carbon.Compared to water molecules,molecules of H2S will
A)ionize more readily.
B)have greater cohesion to other molecules of H2S.
C)have a greater tendency to form hydrogen bonds with each other.
D)have a higher capacity to absorb heat for the same change in temperature.
E)not form hydrogen bonds with each other.
A)ionize more readily.
B)have greater cohesion to other molecules of H2S.
C)have a greater tendency to form hydrogen bonds with each other.
D)have a higher capacity to absorb heat for the same change in temperature.
E)not form hydrogen bonds with each other.
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52
Chemical equilibrium is described by which of the following statements?
A)Forward and reverse reactions continue with no effect on the concentrations of the reactants and products.
B)The concentrations of the products are higher than the concentrations of the reactants.
C)Forward and reverse reactions have stopped so that the concentrations of the reactants and products remain constant.
D)Reactions stop when all reactants have been converted to products.
A)Forward and reverse reactions continue with no effect on the concentrations of the reactants and products.
B)The concentrations of the products are higher than the concentrations of the reactants.
C)Forward and reverse reactions have stopped so that the concentrations of the reactants and products remain constant.
D)Reactions stop when all reactants have been converted to products.
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53
Conversion of liquid water to water vapor requires breaking which of the following types of bonds?
A)ionic bonds
B)both hydrogen bonds and ionic bonds
C)polar covalent bonds
D)hydrogen bonds
E)both polar covalent bonds and hydrogen bonds
A)ionic bonds
B)both hydrogen bonds and ionic bonds
C)polar covalent bonds
D)hydrogen bonds
E)both polar covalent bonds and hydrogen bonds
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54
Which of the following effects is produced by the high surface tension of water?
A)Lakes don't freeze solid in winter despite low temperatures.
B)A water strider can walk across the surface of a small pond.
C)Organisms resist temperature changes,although they give off heat due to chemical reactions.
D)Evaporation of sweat from the skin helps to keep people from overheating.
E)Water flows upward from the roots to the leaves in plants.
A)Lakes don't freeze solid in winter despite low temperatures.
B)A water strider can walk across the surface of a small pond.
C)Organisms resist temperature changes,although they give off heat due to chemical reactions.
D)Evaporation of sweat from the skin helps to keep people from overheating.
E)Water flows upward from the roots to the leaves in plants.
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55
How many molecules of glycerol (C3H8O3;molecular mass = 92)are present in 1 L of a 0.5 M glycerol solution?
A)1 × 1023
B)0)5 × 6.02 × 1023
C)92/2 × 6.02 × 1023
D)0)5 × 6.02/92 × 1023
E)6)02 × 1023
A)1 × 1023
B)0)5 × 6.02 × 1023
C)92/2 × 6.02 × 1023
D)0)5 × 6.02/92 × 1023
E)6)02 × 1023
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56
In a single molecule of water,two hydrogen atoms are bonded to a single oxygen atom by
A)hydrogen bonds.
B)nonpolar covalent bonds.
C)polar covalent bonds.
D)ionic bonds.
E)van der Waals interactions.
A)hydrogen bonds.
B)nonpolar covalent bonds.
C)polar covalent bonds.
D)ionic bonds.
E)van der Waals interactions.
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57
One mole (mol)of glucose (molecular mass = 180 daltons)is
A)180 × 1023 molecules of glucose.
B)1 kg of glucose dissolved in 1 L of solution.
C)the largest amount of glucose that can be dissolved in 1 L of solution.
D)180 grams of glucose.
E)180 grams of glucose dissolved in 1 L of solution.
A)180 × 1023 molecules of glucose.
B)1 kg of glucose dissolved in 1 L of solution.
C)the largest amount of glucose that can be dissolved in 1 L of solution.
D)180 grams of glucose.
E)180 grams of glucose dissolved in 1 L of solution.
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58
Why does ice float in liquid water?
A)The high surface tension of liquid water keeps the ice on top.
B)The ionic bonds between the molecules in ice prevent the ice from sinking.
C)Ice always has air bubbles that keep it afloat.
D)Hydrogen bonds stabilize and keep the water molecules of ice farther apart than the water molecules of liquid water.
E)The crystalline lattice of ice causes it to be denser than liquid water.
A)The high surface tension of liquid water keeps the ice on top.
B)The ionic bonds between the molecules in ice prevent the ice from sinking.
C)Ice always has air bubbles that keep it afloat.
D)Hydrogen bonds stabilize and keep the water molecules of ice farther apart than the water molecules of liquid water.
E)The crystalline lattice of ice causes it to be denser than liquid water.
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59
Which of the following statements correctly defines 1 kilocalorie?
A)1,000 calories,or the amount of heat required to raise the temperature of 1 g of water by 1,000°C
B)100 calories,or the amount of heat required to raise the temperature of 100 g of water by 1°C
C)10,000 calories,or the amount of heat required to raise the temperature of 1 kg of water by 1°F
D)1,000 calories,or the amount of heat required to raise the temperature of 1 kg of water by 1°C
E)1,000 calories,or the amount of heat required to raise the temperature of 100 g of water by 100°C
A)1,000 calories,or the amount of heat required to raise the temperature of 1 g of water by 1,000°C
B)100 calories,or the amount of heat required to raise the temperature of 100 g of water by 1°C
C)10,000 calories,or the amount of heat required to raise the temperature of 1 kg of water by 1°F
D)1,000 calories,or the amount of heat required to raise the temperature of 1 kg of water by 1°C
E)1,000 calories,or the amount of heat required to raise the temperature of 100 g of water by 100°C
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60
Water molecules are able to form hydrogen bonds with
A)compounds that are not soluble in water.
B)compounds that have nonpolar covalent bonds.
C)oxygen gas (O2)molecules.
D)methane gas (CH4)molecules.
E)compounds that have polar covalent bonds.
A)compounds that are not soluble in water.
B)compounds that have nonpolar covalent bonds.
C)oxygen gas (O2)molecules.
D)methane gas (CH4)molecules.
E)compounds that have polar covalent bonds.
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61
How many glucose molecules are contained in 1 liter of a 10 M solution of glucose in water?
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
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62
How many molecules of glycerol (C3H8O3;molecular mass = 92)are present in 0.5 L of a 1 M glycerol solution?
A)1 × 1023
B)0)5 × 6.02 × 1023
C)92/2 × 6.02 × 1023
D)0)5 × 6.02/92 × 1023
E)6)02 × 1023
A)1 × 1023
B)0)5 × 6.02 × 1023
C)92/2 × 6.02 × 1023
D)0)5 × 6.02/92 × 1023
E)6)02 × 1023
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63
If the pH of a solution is increased from pH 5 to pH 7,it means that the
A)concentration of H+ is twice (2×)what it was at pH 5.
B)concentration of H+ is one-half (1/2)what it was at pH 5.
C)concentration of OH- is 100 times greater than what it was at pH 5.
D)concentration of OH- is one-hundredth (0.01×)what it was at pH 5.
E)concentration of H+ is 100 times greater than what it was at pH 5.
A)concentration of H+ is twice (2×)what it was at pH 5.
B)concentration of H+ is one-half (1/2)what it was at pH 5.
C)concentration of OH- is 100 times greater than what it was at pH 5.
D)concentration of OH- is one-hundredth (0.01×)what it was at pH 5.
E)concentration of H+ is 100 times greater than what it was at pH 5.
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64
What is the pH of a solution with a hydroxyl ion (OH-)concentration of 10-12 M?
A)pH 2
B)pH 4
C)pH 10
D)pH 12
E)pH 14
A)pH 2
B)pH 4
C)pH 10
D)pH 12
E)pH 14
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65
The molar mass of glucose (C6H12O6)is 180 g/mol.Which of the following procedures should you carry out to make a 0.5 M solution of glucose?
A)Dissolve 0.5 g of glucose in a small volume of water,and then add more water until the total volume of the solution is 1 L.
B)Dissolve 90 g of glucose in a small volume of water,and then add more water until the total volume of the solution is 1 L.
C)Dissolve 180 g of glucose in a small volume of water,and then add more water until the total volume of the solution is 1 L.
D)Dissolve 0.5 g of glucose in 1 L of water.
E)Dissolve 180 g of glucose in 0.5 L of water.
A)Dissolve 0.5 g of glucose in a small volume of water,and then add more water until the total volume of the solution is 1 L.
B)Dissolve 90 g of glucose in a small volume of water,and then add more water until the total volume of the solution is 1 L.
C)Dissolve 180 g of glucose in a small volume of water,and then add more water until the total volume of the solution is 1 L.
D)Dissolve 0.5 g of glucose in 1 L of water.
E)Dissolve 180 g of glucose in 0.5 L of water.
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66
What is the pH of a 10-3 M NaOH solution?
A)pH 3
B)pH 8
C)pH 9
D)pH 10
E)pH 11
A)pH 3
B)pH 8
C)pH 9
D)pH 10
E)pH 11
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67
A strong acid like HCl
A)dissociates completely in an aqueous solution.
B)increases the pH when added to an aqueous solution.
C)reacts with strong bases to create a buffered solution.
D)is a strong buffer at low pH.
E)is a strong buffer at high pH.
A)dissociates completely in an aqueous solution.
B)increases the pH when added to an aqueous solution.
C)reacts with strong bases to create a buffered solution.
D)is a strong buffer at low pH.
E)is a strong buffer at high pH.
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68
A solution contains 0.0000001 (10-7)moles of hydroxyl ions (OH-)per liter.Which of the following best describes this solution?
A)acidic: H+ acceptor
B)basic: H+ acceptor
C)acidic: H+ donor
D)basic: H+ donor
E)neutral
A)acidic: H+ acceptor
B)basic: H+ acceptor
C)acidic: H+ donor
D)basic: H+ donor
E)neutral
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69
How many glucose molecules are present in a 100-mL sample of a 1 M solution of glucose?
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
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70
The molar mass of glucose is 180 g/mol.Which of the following procedures should you carry out to make a 1 M solution of glucose?
A)Dissolve 1 g of glucose in 1 L of water.
B)Dissolve 180 g of glucose in 1 L of water.
C)Dissolve 180 g of glucose in 180 g of water.
D)Dissolve 180 milligrams (mg)of glucose in 1 L of water.
E)Dissolve 180 g of glucose in 0.8 L of water,and then add more water until the total volume of the solution is 1 L.
A)Dissolve 1 g of glucose in 1 L of water.
B)Dissolve 180 g of glucose in 1 L of water.
C)Dissolve 180 g of glucose in 180 g of water.
D)Dissolve 180 milligrams (mg)of glucose in 1 L of water.
E)Dissolve 180 g of glucose in 0.8 L of water,and then add more water until the total volume of the solution is 1 L.
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71
How many glucose molecules are contained in one liter of a 0.1 M solution of glucose in water?
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
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72
What is the hydrogen ion (H+)concentration of a solution of pH 8?
A)8 M
B)8 × 10-6 M
C)0)01 M
D)10-8 M
E)10-6 M
A)8 M
B)8 × 10-6 M
C)0)01 M
D)10-8 M
E)10-6 M
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73
Which of the following dissociates completely in aqueous solution and is therefore considered to be a strong base (alkali)?
A)NaCl
B)HCl
C)NH3
D)H2CO3
E)NaOH
A)NaCl
B)HCl
C)NH3
D)H2CO3
E)NaOH
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74
What is the hydroxyl ion (OH-)concentration of a solution of pH 8?
A)8 M
B)8 × 10-6 M
C)0)01 M
D)10-8 M
E)10-6 M
A)8 M
B)8 × 10-6 M
C)0)01 M
D)10-8 M
E)10-6 M
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75
How many glucose molecules are contained in 0.1 liter of a 10 M solution of glucose in water?
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
A)6)02 × 1023
B)3)01 × 1023
C)6)02 × 1024
D)12.04 × 1023
E)6)02 × 1022
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76
A 0.01 M solution of a substance has a pH of 2.What can you conclude about this substance?
A)It is a strong acid that ionizes completely in water.
B)It is a strong base that ionizes completely in water.
C)It is a weak acid.
D)It is a weak base.
E)It is a buffer.
A)It is a strong acid that ionizes completely in water.
B)It is a strong base that ionizes completely in water.
C)It is a weak acid.
D)It is a weak base.
E)It is a buffer.
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77
Which of the following solutions would require addition of the greatest amount of base to bring the solution to neutral pH?
A)gastric juice at pH 2
B)vinegar at pH 3
C)tomato juice at pH 4
D)black coffee at pH 5
E)household bleach at pH 12
A)gastric juice at pH 2
B)vinegar at pH 3
C)tomato juice at pH 4
D)black coffee at pH 5
E)household bleach at pH 12
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78
When an ionic compound such as sodium chloride (NaCl)is placed in water,the component atoms of the NaCl crystal dissociate into individual sodium ions (Na+)and chloride ions (Cl-).In contrast,the atoms of covalently bonded molecules (e.g. ,glucose,sucrose,glycerol)do not generally dissociate when placed in aqueous solution.Which of the following solutions would be expected to contain the greatest number of solute particles (molecules or ions)?
A)1 L of 0.5 M NaCl
B)1 L of 0.5 M glucose
C)1 L of 1.0 M NaCl
D)1 L of 1.0 M glucose
E)2 L of 0.5 M glucose
A)1 L of 0.5 M NaCl
B)1 L of 0.5 M glucose
C)1 L of 1.0 M NaCl
D)1 L of 1.0 M glucose
E)2 L of 0.5 M glucose
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79
If the pH of a solution is decreased from pH 8 to pH 6,it means that the
A)concentration of H+ is twice (2×)what it was at pH 8.
B)concentration of H+ is one-half (1/2)what it was at pH 8.
C)concentration of OH- is one-half (1/2)what it was at pH 8.
D)concentration of OH- is one-hundredth (0.01×)what it was at pH 8.
E)concentration of H+ is 100 times greater than what it was at pH 8.
A)concentration of H+ is twice (2×)what it was at pH 8.
B)concentration of H+ is one-half (1/2)what it was at pH 8.
C)concentration of OH- is one-half (1/2)what it was at pH 8.
D)concentration of OH- is one-hundredth (0.01×)what it was at pH 8.
E)concentration of H+ is 100 times greater than what it was at pH 8.
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80
The molar mass of water is 18 g/mol.What is the molarity of 1 liter of pure water? (Hint: One liter of pure water has a mass of 1 kg. )
A)55.6 M
B)18 M
C)37 M
D)0)66 M
E)1)0 M
A)55.6 M
B)18 M
C)37 M
D)0)66 M
E)1)0 M
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