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Chapter 12- Liquids Solids and Gases
Chapter 12
72
Chemistry
10th Grade
02/09/2010

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Term
Liquids
Definition
particles are in constant motion, but closer together and lower in kinetic energy than those in a gas
Term
liquids
Definition
attraction between _____ particles is caused by intermolecular forces
Term
london dispersion
Definition
_______ is the weakest intermolecular force
Term
dipole-dipole
Definition
are stronger intermolecular forces than london dispersion
Term
hydrogen bonding
Definition
______ is the strongest intermolecular force
Term
fluids
Definition
since particles are not fixed, they move around constantly; they are referred to as _________
Term
they diffuse and evaporate because they have more kinetic energy than others and escape
Definition
Use the kinetic molecular theory to explain why liquids are fluids (why they diffuse and evaporate)
Term
liquids
Definition
_________ have high densities compared to gases because of the close arrangement of liquid particles
Term
liquids
Definition
________ are less compressible than gases because liquid particles are more closely packed together
Term
liquids
Definition
diffusion is slower in ____ than in gases because particles are closer together and their attractive forces between particles is greater
Term
liquids
Definition
in _________, molecules pull together to minimize the size
Term
surface tension
Definition
___ is the force that pulls adjacent parts of a liquids surface together, decreasing surface area to the smallest possible size. (it results from the attractive forces between particles of a liquid
Term
capillary action
Definition
the attraction of the surface of a liquid to the surface of a solid
Term
vaporization
Definition
the process by which a liquid of solid changes to a gas
Term
fact
Definition
to go from liquid or solid to a gas, you add heat
Term
evaporation
Definition
the process by which particles escape from the surface of a nonboiling liquid and enter the gas state
Term
evaporation
Definition
occurs because the particles of a liquid have different kinetic energies
Term
evaporation
Definition
some particles with higher than average energies can overcome intermolecular forces holding them together and can then escape into the gas state
Term
freezing or solidification
Definition
physically changing liquid to solid by removing heat is called _____
Term
viscosity
Definition
is the resistance of a substance to flow
Term
solids
Definition
intermolecular forces hold particles in fixed positions with only vibrational movement around fixed points
Term
crystalline solids
Definition
contain crystals in which the particles are arranged in an orderly, geometric, repeating pattern
Term
amorphous solid
Definition
particles are arranged randomly
Term
solids
Definition
______- have a definite shape and volume
Term
melting
Definition
the physical change of a solid to a liquid by the addition of heat
Term
melting point
Definition
temperature where kinetic energy within the solid overcome the attractive forces holding them together
Term
physical change
Definition
same particles into a different form
Term
solids
Definition
have a definite melting point
Term
crystalline solids
Definition
_________, which have a definite melting point, particles can break out of a fixed position
Term
amorphous solids
Definition
_______, such as glass and plastics, they have no definite melting point, and are able to glow over a wide range of temperatures
Term
supercooled liquids
Definition
amorphous solids are sometimes classified as __________ because they have the ability to flow over a range of temperatures. (these properties exist because their particles are arranged randomly, much like those in a liquid)
Term
solids
Definition
_____ are slightly denser than liquids and much denser than gases because the particles of a solid are more closely packed than that of a gas or liquid
Term
solids
Definition
_____ are less compressible than liquids
Term
solids
Definition
in _______, the rate of diffusion is millions of times slower than in liquids
Term
crystal structure
Definition
the total three dimensional arrangement of particles of a crystal
Term
lattice
Definition
the arrangement of particles can be represented by a coordinate system called a _____
Term
unit cell
Definition
the smallest portion of a crystal lattice that shows the three-dimensional pattern of the entire lattice is called the _______
Term
ionic crystals
Definition
consist of positive and negative ions arranged in a regular pattern
Term
ions
Definition
can be monatomic or polyatomic
Term
ionic crystals are arranged in a regular pattern. in metallic crystals, the metal atoms are surrounded by a sea of valence electrons
Definition
Distinguish between ionic crystals and metallic crystals
Term
covalent network crystals
Definition
occur when covalent bonding extends throughout a network that includes a very large number of atoms (ex. diamond, quartz)
Term
covalent network crystals
Definition
essentially giant molecules
Term
metallic crystals
Definition
occur when metal atoms are surrounded by a sea of valence electrons, which are donated by the metal atoms and belong to the crystal as a whole
Term
high electric conductivity
Definition
the freedom of the valence electron to move throughout the crystal explains the high ___________
Term
covalent molecular crystals
Definition
consist of covalently bonded molecules held together by intermolecular forces
* if nonpolar, the only forces are london dispersion
* if polar, the molecules are held together by weak london dispersion forces, stronger dipole-dipole forces, and stronger hydrogen bonding.
*these are much weaker than intramolecular covalent bonds
Term
Ionic
covalent network
metallic
covalent molecular
Definition
*hard and brittle; good insulator
*high melting point; hard
*good conductor
*soft
Term
Equilibrium
Definition
a dynamic condition in which two opposing changes occur at equal rates in a closed system
Term
equillibrium
Definition
when two opposing things happen at the same rate
Term
closed system
Definition
matter cannot enter or leave, but energy can
Term
condensation
Definition
the process by which a gas changes to a liquid
Term
Le Chatelier's Principle
Definition
states that when a system at equilibrium is disturbed by application of a stress, it attains a new equilibrium position that minimizes stress
Term
equilibrium vapor pressure
Definition
the pressure exerted by a vapor in equilibrium with its corresponding liquid at a given temperature
Term
equilibrium vapor pressure
Definition
increases with increasing temp because increasing the temp of a liquid increases the average kinetic energy
Term
volatile liquids
Definition
liquids that evaporate quickly and have relatively weak forces of attraction between particles
Term
boiling
Definition
the conversion of a liquid to a vapor within the liquid as well as its surface
Term
boiling
Definition
__________ occurs when the equilibrium vapor pressure of the liquid equals the atm pressure which is the boiling point
Term
molar heat of vaporization
Definition
the amount of heat energy needed to vaporize one mole of a liquid at its boiling point
Term
fact
Definition
boiling is throughout the whole thing. evaporation is layers at a time
Term
molar heat of vaporization
Definition
40.79 KJ/mol
Term
heat of vaporization
Definition
the stronger the attraction between the particles of a liquid, the more energy required to overcome it which results in a higher _____________
Term
freezing point
Definition
the temp at which the solid and liquid are in equilibrium at 1 atm pressure (760 torr, 101.25 kPa)
Term
molar heat of fusion
Definition
the amount of energy required to melt one mol of a solid at its melting point
Term
molar heat of fusion
Definition
6.009 KJ/mol
Term
sublimation
Definition
the change of state from a solid directly to a gas (dry ice)
Term
deposition
Definition
the change of a state from a gas to a solid (frost)
Term
phase diagrams
Definition
graphs of pressure vs temp that shows the conditions at which phases of a substance exists
Term
triple point
Definition
indicates the temp and pressure conditions at which the solid, liquid, and vapor of a substance can coexist at equilibrium
Term
critical point
Definition
indicates the critical temp and pressure
Term
critical temperature
Definition
temp above which the substance cannot exist in the liquid states
Term
critical pressure
Definition
the lowest pressure at which the substance can exist as a liquid at critical temp
Term
fact
Definition
critical pressure of water is 217.75 atm
critical temp of water is 373.99 C
Term
the structure of water
Definition
two atoms of hydrogen and one atom of oxygen united by polar covalent bonds. A water molecule is bent
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