Chemistry Fall and Winter – Flashcards

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Anion
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negatively charged ion
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Cation
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positively charged ion
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Isoelectronic Ions
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Have the same number of electrons (Ne and F-)
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Electron Affinity
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The energy involved in adding an e- to the atom
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Ionic Compounds
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Provide a conductory solution when dissolved in water
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Molecular Compounds
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When dissolved in water, the solution does not conduct.
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Atomic Size
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amount of space that e- take up
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Anion Size
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Always larger than its neutral atom because it has a lesser ENC due to the extra e-
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Cation Size
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Smaller than its neutral atom because it has a greater ENC due to the lost e-
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Ionization Energy
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The amount of energy required to remove an e- from an atom
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Negative Electron Affinity
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The atom releases energy to the atmosphere
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Positive Electron Affinity
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The atom requires an imput of energy in order for the atom to accept e-
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Electronegativity
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attraction for the e- in a shared bond

 

"greediness" factor 

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Ionic Compounds
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Held together by ionic bonds

 

made of an anion and a cation, usually metal and non-metal

  

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Octet Rule
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Atoms tend to gain, lose, or share electrons in order to achieve an octet
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Charges of Transition Metals
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Many transition metals have more than one possible charge, such as Iron (II) and Iron (III) or Copper (I) and Copper (II)
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Sulfate
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SO42-
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Ammonium
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NH4+
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Acetate
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C2H3O2-
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Carbonate
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CO32-
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Hydroxide
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OH-
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Nitrate
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NO3-
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Phosphate
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PO43-

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Molecular Compounds
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Covalently bonded compounds

 

"molecule" - no net charge

 

 usually between two non-metals
 

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Non-polar bonds
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Covalent

 

Fairly equal sharing of e-

 

Difference is ≤ 0.4

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Polar Covalent Bonds
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Unequal sharing of e-

 

0.4 ≤ ∆ ≤ 2.0 

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Ionic Compounds
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Cation : Anion

 

Metal : Non-metal

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Prefixes Denoting Count
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Used in covalent bonds forming molecules between two non-metals

 

Mono- = 1, di- = 2, tri- = 3, etc.

 

H2S = dihydrogen monosulfide

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Valence e-
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The outermost e- occupying the s + p orbitals

 

up two eight valence e- are possible

 

exceptions: H and He ~ have no p orbitals 

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Lewis Dot Structure
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Shows the number of valence e-
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Ethanol
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C2H5OH
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Chemical Reactions
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Compounds and elements coming together and breaking apart
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Chemical Equation
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Describes chemical reactions using elemental symbols and phase subscripts
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(l)
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Phase subscript for liquid
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(s)
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Phase Subscript for solids
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(g)
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Phase subscript for gas
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(aq)
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Phase subscript for aqueous
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Aqueous
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Dissolved in water
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Signs of a Reaction
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1. Change of state (production of a gas or solid)

2. Color Change

3. Temperature (E) change

*Light may be produced, but it isn't common.;

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Exothermic Reaction
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Energy leaves the system

;

reactants --> products + E(heat) 

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Endothermic
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Energy enters the system

 

E(heat) + reactants --> products

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Law of Conservation of Mass
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In a chemical reaction, mass is neither created nor destroyed.

 

Mass of Reactant = Mass of Product

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Synthesis (direct combination) Reaction
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Two or more elements or simple compounds combine to form a single, more complex compound.
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Decomposistion Reactions
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A single compound breaks down into elements or simpler compounds

 

Heat or some form of energy is often needed to make these happen 

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Combustion Reaction
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When a substance reacts with O2
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Dissociation Reactions
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Breaking up pf a soluable ionic compound in water into its ionic parts

 

Ionic parts always exist in "aqueous" phase

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Single Replacement Reactions
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A more active metal replaces a less active metal in a compound, or a more active halogen replaces a less active halogen
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Double Replacement Reaction
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Two ionic compounds exchange ions.

 

Both must be soluble originally and at least one new compound form/precipitate

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Soluable
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Dissolves in water to form an aqueous solution
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Insoluable
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Doesn;t dissolve in water, stays together as a compound
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Mole
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Chemist's count

 

Used when referring to objects, like atoms, molecules, and formula units

 

6.02 • 1023

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Molarity, M
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Moles of solute


Liters of Solution
 
 
Describes Concentration

 

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Percent by Mass
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mass of part / mass of whole • 100
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Theoretical Yield
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The amount of product that is expected based on stoichiometric principles
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Heat
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Energy that is transferedfrom one object to abother due to temperature difference
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Energy
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"ability to do work"

 

Main types are kenetic energy (KE - energy of motion) and potential energy (PE - stored energy in bonds and in the structure itself)

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Temperature
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Average KE of the particles in a sample
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Exothermic Reactions
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Release energy to their surroundings
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Endothermic Reactions
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Absorb energy from surroundings, which is usually stored in new bonds
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∆H, Enthalpy
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Change in the energy of a system in terms of the KE and PE of the system's parts

 

∆H = Hf - Hi

∆H = Hproducts - Hreactants

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