Chemistry 2nd Quarter exam review

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38 Terms

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Chemical bond

Mutual electrical attraction between the nuclei and valence electrons of different atoms that binds the atoms together.

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Point of chemical bonding

The atoms want to become more stable

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Ionic bonding

The chemical bond resulting from electrical attraction between large numbers of cations and anions

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Cation

Positive ion

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Anion

Negative ion

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Covalent bond

Chemical bond resulting from the sharing of an electron pair between two atoms

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Polar-Covalent bond

Covalent bond where the bonded atoms have an unequal attraction for the shared electrons

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Non-Polar Covalent bond

Covalent bond where the bonding electrons are shared equally by the bonding of atoms resulting in a balanced distribution of electrons charge

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Diatomic elements

H-O-N-Cl-Br-I-F, Hydrogen, Oxygen, Nitrogen, Chloride, Bromide, Iodine, Florine

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Octet rule

Chemical compounds tend to form where they gain, lose or share electrons, and has an octet (set of 8) electrons in its highest occupied energy level

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Lewis structures

Dot diagram that provides visual representations of valence electrons in a covalent bond between atoms of a molecule.

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Shared electron pair

Electrons between atoms that have formed covalent bonds

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Unshared electron pair

Electron pair not involved in chemical bonding. Also frequently referred to as a "lone pair".

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Single bond

A covalent bond where two atoms share one pair of electrons

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Multiple bond

A double or triple bond in a covlaent bond

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Ionic compound

Compound composed of positive and negative ions that are combined so that the numbers of positive and negative charges are equal

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Formula unit

The simplest collection of atoms from where an ionic compound's formula can be established

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Polyatomic ion

A charged group of covalently bonded atoms

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Metallic bonding

Chemical bonding that results from the attraction between metal atoms and the surrounding sea of electrons

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VSEPR theory

Valence Shell Electron Pair Repulsion. Repulsion between sets of valence-level electrons surrounding an atom causing the sets to be oriented as far apart as possible

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Intermolecular forces

The force of attraction between molecules

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Hydrogen bonding

Intermolecular force in which a hydrogen atom that is bonded to a highly electronegative atom is attracted to an electronegative atom in a nearby element

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Molar mass

Elements : check periodic table Grams/Mole

Molecules: add up masses of each element Grams/Mole

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Percent composition

Total mass of element or compound present devided by the mass of each element in the compound or just the lone element

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Empirical formula

Simplest or most reduced ratio of atoms in a compound

https://www.youtube.com/watch?v=wnRaBWvhYKY

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Molecular formula

"Regular Formula" How many atoms of each atom are in a compound

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Chemical formula

Formula that indicates the relative numbers of atoms of each kind in a chemical compound by using atomic symbols and numerical subscription

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Subscript

Number that indicates the amount of a certain element

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Monatomic ions

Ion formed from a single atom

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Oxidation numbers

a number assigned to an atom in a molecular compound or ion that indicates the general distribution of electrons among the bonded atoms

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Chemical equation

Representation with symbols and formulas of the identities and relative amounts of the reactants and products in a chemical reaction

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Evidence of chemical reaction

Evolution of heat and light

Production of a gas

Formation of precipitate

Color change

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Precipitate

Solid that is produces as a result of a chemical reaction in solution and that separates from the solution

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Coefficient

A number in front of a chemical formula in an equation that indicates how many molecules or atoms of each reactant and product are involved in a reaction

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Reason for balancing chemical equations

Satisfy the law of conservation of mass

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Synthesis/Composition reaction

A+B = AB

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Decomposition reaction

AB = A+B

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Double replacement reaction

AX+BY = AY+BX