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Which pair of dispersed phases and dispersing media can never form a colloid?


A) solid and gas
B) liquid and gas
C) solid and solid
D) liquid and liquid
E) gas and gas

F) None of the above
G) C) and D)

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The solubility of a solid always increases with increasing solvent temperature.

A) True
B) False

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What is the name given to a solution that contains the maximum amount of solute that will dissolve in a solvent at a specific temperature?


A) Saturated
B) Unsaturated
C) Solvent
D) Solute
E) Supersaturated

F) None of the above
G) C) and D)

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Dissolving a solute such as KOH in a solvent such as water results in


A) an increase in the melting point of the liquid.
B) a decrease in the boiling point of the liquid.
C) a decrease in the vapor pressure of the liquid.
D) no change in the boiling point of the liquid.

E) B) and D)
F) A) and B)

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When 12.1 g of the sugar sucrose (a nonelectrolyte) are dissolved in exactly 800 g of water, the solution has a freezing point of -0.082°C. What is the molar mass of sucrose? (Kf of water is 1.86°C/m.)


A) 426 g/mol
B) 99.2 g/mol
C) 178 g/mol
D) 266 g/mol
E) 343 g/mol

F) A) and B)
G) A) and C)

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What volume of water (d = 1.00 g/mL) should be added to 600. mL of ethanol in order to have a solution that boils at 95.0°C? (For ethanol, Kb = 1.22 °C/m; density = 0.789 g/cm3; boiling point = 78.4°C)


A) 186 mL
B) 245 mL
C) 518 mL
D) 116 mL
E) 322 mL

F) B) and E)
G) A) and C)

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Cadmium bromide is used in photography and lithography. What is the molality of a solution prepared by dissolving 45.38 g of CdBr2 in 375.0 g of water?


A) 0.03035 m
B) 0.01600 m
C) 0.1210 m
D) 0.4446 m
E) 16.00 m

F) C) and E)
G) All of the above

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Which law describes the quantitative relationship between the solubility of a gas and its partial pressure?


A) Entropy
B) Henry's law
C) Enthalpy
D) Boyle's law
E) Avogadro's law

F) All of the above
G) A) and B)

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Barbiturates are synthetic drugs used as sedatives and hypnotics. Barbital (184.2 g/mol) is one of the simplest of these drugs. What is the boiling point of a solution prepared by dissolving 42.5 g of barbital in 825 g of acetic acid? (For pure acetic acid, Kb = 3.07°C/m; boiling point of pure acetic acid = 117.9°C)


A) 117.0°C
B) 117.7°C
C) 118.1°C
D) 118.8°C
E) 120.4°C

F) D) and E)
G) C) and D)

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________ is the term used for a water fearing substance.

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What is the molarity of a solution that is 26.0% by mass phosphoric acid (H3PO4) and that has a density of 1.155 g/mL?


A) 2.30 × 10 -3 M
B) 2.30 M
C) 2.65 M
D) 3.06 M
E) 0.265 M

F) B) and E)
G) C) and E)

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What is defined as the selective passage of solvent molecules through a porous membrane from a more dilute solution to a more concentrated solution?


A) Permeability
B) Semipermeability
C) Osmotic pressure
D) Osmosis
E) Vapor pressure

F) B) and D)
G) D) and E)

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Which process defines how an ionic compound breaks apart into its constituent ions upon dissolution?


A) electrolysis
B) dissociation
C) division
D) ionization
E) decomposition

F) B) and E)
G) C) and D)

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The ________ ________ is the scattered light that is caused by the dispersed phase of a colloid that has a beam of light passed through it.

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What is defined as a solution that has a lower concentration of dissolved substances than plasma?


A) Hypotonic
B) Hypertonic
C) Aplasmic
D) Plasmic
E) Colloidal

F) A) and D)
G) A) and B)

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________ colloids are solutions containing extremely large molecules such as proteins. These colloids are also termed "water loving".


A) Hydrophobic
B) Aerosol
C) Hydrophilic
D) Emulsion
E) Solid sol

F) B) and D)
G) None of the above

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From the following list of aqueous solutions and water, select the one with the highest boiling point.


A) 1.0 M KNO3
B) 0.75 M NaCl
C) 0.75 M CuCl2
D) 2.0 M C12H22O11 (sucrose)
E) pure water

F) B) and E)
G) D) and E)

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What is the vapor pressure above a solution prepared by dissolving 0.500 mol of a nonvolatile solute in 275 g of hexane (86.18 g/mol) at 49.6°C? P°hexane = 400.0 torr at 49.6°C.


A) 54 torr
B) 154 torr
C) 246 torr
D) 346 torr
E) 400. torr

F) C) and D)
G) B) and E)

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What volume of ethanol (density = 0.7893 g/cm3) should be added to 450. mL of water in order to have a solution that freezes at -15.0°C? Assume the density of water is 1.0 g/mL. (For water, Kf = 1.86 °C/m.)


A) 371 mL
B) 470 mL
C) 212 mL
D) 132 mL
E) 167 mL

F) A) and B)
G) A) and C)

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What mass of water is required to dissolve 27.8 g of ammonium nitrate NH4NO3 in order to prepare a 0.452 m solution?


A) 0.0615 kg
B) 0.100 kg
C) 0.177 kg
D) 0.768 kg
E) 1.30 kg

F) C) and E)
G) A) and B)

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