General Chemistry II Cleveland (CCC) – Flashcards
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Periodic Table of Quantum numbers |
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Easy to read graph of Quantum Numbers |
Intermolecular Forces |
The attractive forces between molecules.
Usually weaker than Intramolecular Forces
(Hint: Interstates are highways that connect other states, intrastates are highways within a state.) |
Intramolecular Forces |
The forces that hold atoms together within a molecule
Usally stronger than intermolecular forces.
(Hint: Interstates are highways that connect other states, intrastates are highways within a state.)
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Electronegativity Definition
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The ability of an atom in a molecule to attract the shared electrons in a covelant bond.
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Electromagnetivy Chart.
Increases from left to right. Increases from top to bottom.
Noble Gases are not Electromagnetic. |
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Polar Covalent Bond
The bonding electrons are attracted more strongly towards the element that has higher electromagnetity. |
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Non-Polar Covelant Bond
Electrons are shared equally. The individual bond polarities cancel. Therefore, the molecule does not have a dipole moment. In other words, the molecule is nonpolar.
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Bonds by Electromagnetivity
1. Non-Polar Covalent ?-?
2. Polar Covalent ?-?
3. Ionic ?-? |
1. Non-Polar Covalent 0 - 0.4
2. Polar Covalent 0.5 - 2.0
3. Ionic 2.0 + [image] |
Dipole Moment Defintion |
Dipole Moment
a measure of the net molecular polarity.
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The individual bond polarities do not cancel.
Has a dipole moment.
The molecule is polar. |
Types of Intermolecular Forces
(The attraction between molecules that hold them together) |
Intermolecular Forces
2. Dipole-Dipole Forces
3. London Dispersion Forces
4. Hydrogen Bonds |
Dipole-Dipole Forces Defintion |
Dipole-Dipole Forces The result of electrical interactions between dipoles on neighboring molecules.
(As the dipole forces increase
the intermolecular forces increase.
As the intermolecular forces increase,
the boiling points increase.)
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Dipole-Dipole Forces Alignment |
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Hydrogen Bond Definition |
An attractive force between a hydrogen atom bonded to a very electronegative atom (O, N, or F) and an unshared electron pair on another electronegative atom.
It is a Dipole-Dipole, Dispersion, and Hydrogen Bond.)
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London Dispersion Forces Defintion (Dispersion Forces) |
The result of motion of electrons which gives the molecule a short-lived dipole momentwhich induces temporary dipoles in neighboring molecules. (Temporary Dipoles cause random movement. All molecules have Dispersion. It is the weakest of all forces. Tend to have low boiling points.) |
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London Dispersion Forces: The result of motion of electrons which gives the molecule a short-lived dipole moment which induces temporary dipoles in neighboring molecules.
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Polarizability Definition |
Polarizability is the ease with which the electron distribution in the atom or molecule can be distorted Polarizability increases with:
As the dispersion forces increase, the intermolecular forces increase. As the intermolecular forces increase, the boiling points increase.
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London Dispersion Forces Large vs Compact Molecules |
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Ion-Dipole Forces |
Ion-Dipole Forces The result of electrical interactions between anion and the partial charges on a polar molecule.
(example: salt that can be disolved in a polar molecule.) |
Ion-Dipole Forces example |
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Intermolecular Forces from Weakest to Strongest |
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Surface Tension Definition
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Surface Tension The amount of engery required to strech or increase the surface of a liquid by a unit of area. (A physical property. Strong intermolecular forces = High surface tension)
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Surface Tension example |
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Viscosity Definition |
Viscosity: the measure of a fluid's resistance to flow. (Strong Intermolecular Forces = High Viscosity) |
Phase Change Definition (State Change) |
Phase Change(State Change): A change in physical form, but not the chemical identity of a substance.
(example: ice melting, water evaporating) |
Endothermic Definition
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Endothermic reaction:
A chemical reaction that absorbs heat from its environment. Positive Enthalpy (+?H) and Positive Entropy (+?S) |
Exothermic Definition |
Exothermic:
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Fusion (melting) Definition |
Fusion (melting): From a solid to a liquid Endothermic reaction-absorbs heat
Positive Enthalpy (+?H) and Positive Entropy (+?S)
(example: melting ice or solid salt) |
Vaporization Definition
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Vaporization:
From a liquid to a gas
Positive Enthalpy (+?H) and Positive Entropy (+?S)
(example: water to vapor) |
Sublimation Defintion |
Sublimation:
From a solid to a gas Endothermic reaction-absorbs heat Positive Enthalpy (+?H) and Positive Entropy (+?S)
(example: dry ice) |
Freezing Defintion |
Freezing:
From a liquid to a solid
Exothermic reaction-releases heat Negative Enthalpy (-?H) and Negative Entropy (-?S) (example: water to ice) |
Condensation Definition |
Condensation:
From a gas to a liquid
Exothermic reaction-releases heat
dew, clouds) |
Depostion Definition |
Depostion:
From a gas to a solid
Exothermic reaction-releases heat Negative Enthalpy (-?H) and Negative Entropy (-?S) (example: water vapor freezing into frost in winter) |
Phase Changes Chart |
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Phase of change Chart Illustrated |
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Enthalpy of (Heat) Fusion Definition
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Enthalpy of (Heat) Fusion (?H fusion): The amount of energy required to convert a solid into a liquid. |
Enthalpy (Heat) of Vaporization Definition
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Enthalpy (Heat) of Vaporization (?H vapor): The amount of energy required to convert a liquid into a gas. |
Vapor Pressure Definition |
Vapor Pressure:
The partial pressure of a gas in equilibrium with liquid at a constant temperature.
Temp ^ = vapor pressure ^ |
Boiling Point Definition |
Boiling Point: The temperature at which the (equilibrium) vapor pressure of a liquid is equal to the external pressure. |
Normal Boiling Point Definition |
Normal Boiling Point:
The temperature at which a liquid boils when the external pressure is 1 atm, or 760mm of Hg. |
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Phase Diagram:
Summarizes the conditions at which a substance exists as a solid, liquid, or gas.
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Normal freezing Point:
Normal Boiling Point: |
Normal freezing Point:
Normal Boiling Point: both occur at 1 atm or 760mm of Hg
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Critial Temperature Definition + Critial Pressure Definition = Critial Point Definition |
Critial Temperature: the temperature beyond which a gas can be liquified reguardless of pressure. Critial Pressure: the pressure beyond which a gas can be liquified reguardless of temperature. Critial Point: Combination of temperature and pressure beyond which a gas can be liquified. |
Supercritical Fluid Definition |
Supercritical Fluid: A state of matter beyond the critial point that is neither liquid nor gas. |
Triple Point Definition |
Triple Point: The temperature and pressure at which point all three phases coexist in equilibrium. (Solid, liquid, and gas) (example: water at 0.01°C) |