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CHEM 1211: Exam 3

Strong Acids
A strong acid is an acid that ionizes completely in an aqueous solution by losing one proton, according to the equationHCl, HBr, HI, HNO3, H2SO4, HClO3, HClO4
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Weak Acids
A weak acid is an acid that dissociates incompletely. HF, CH3COOH, HCN, H3PO4, HNO2, H2CO3, H2SO3, (COOH)2
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Strong Bases
Hydroxides of Group IA metals and the heavier metals of Group IIALiOH, NaOH, KOHm RbOH, CsOH, Ca(OH)2, Sr(OH)2, Ba(OH)2
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Weak Bases
Covalent substances that are soluble in, but that ionize only slightly in, watermost common: ammonia- NH3
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Inorganic Acids(solubility)
soluble
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Group IA(solubility)
soluble
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ammonium ion(solubility)
NH4; soluble
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Common Nitrates(solubility)
NO3; soluble
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Common Acetates(solubility)
CH3COO; soluble
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Common Chlorates(solubility)
ClO3; soluble
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Common Perchlorates(solubility)
ClO4; soluble
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Chlorides(solubility)
soluble except for AgCl, Hg2Cl2, and PbCl2
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Bromides(solubility)
soluble except for AgBr, Hg2Br2, and PbBr2moderately soluble: HgBr2
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Iodides(solubility)
similar to bromides and chlorides; many heavy-metal iodides are insoluble
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Fluorides(solubility)
soluble except MgF2, CaF2, SrF2, BaF2 and PbF2
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Sulfates(solubility)
soluble except for PbSO4, BaSO4, and HgSO4moderately soluble: CaSO4, SrSO4, and Ag2SO4
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Common Metal Hydroxides(solubility)
insoluble except those of the Group IA metals and the heavier members of the Group IIA metals beginning with Ca(OH)2
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Carbonates(solubility)
insoluble in water except those of the Group IA metals moderately soluble: MgCO3
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Phosphates(solubility)
insoluble in water except those of the Group IA metals
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Aresenates(solubility)
insoluble in water except those of the Group IA metals
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NH4(solubility)
moderately soluble
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Sulfides(solubility)
insoluble in water except for those of the Group IA metals and Group IIA metals
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Binary Compounds(naming)
A metal cation that exhibits only one oxidation state and a nonmetal anion- metal is named first and then the nonmetal with -ide at the end A metal cation that exhibits more than one oxidation state with a nonmetal anion- metal, roman numeral, nonmetal with -ide at the end
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Pseudobinary Ionic Compounds(naming)
consist of polyatomic ions that behave as simple binary ionic compounds OH, CN, NH4 uses binary ionic naming system
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Binary Molecular Compounds(naming)
2 nonmetals bonded together name the first element then the second with a prefix: mono-, di, tri-, tetra-, penta-, hexa, hepta-, octa-, nona-, deca-
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Binary Acids(naming)
hydrogen and a nonmetal are bonded starts with hydrogen then the nonmetal ending in -ide
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AB2
no lone pairs on A linear electronic geometry and molecular sp hybridization nonpolar
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AB3
no lone pairs on A trigonal planar electronic and molecular geometry sp2 nonpolar
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AB4
no lone pairs on A tetrahedral electronic and molecular geometry sp3 nonpolar
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AB3U
one lone pair on A tetrahedral electronic geometry trigonal pyramidal sp3 polar
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AB2U2
two lone pairs on A tetrahedral electronic geometry angular, bent, or v-shaped sp3 polar
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ABU3
three lone pairs on A tetrahedral electronic geometry linear sp3 polar
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AB5
trigonal bipyramidal electronic geometry and molecular nonpolar sp3d
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AB4U, AB3U2, AB2U3
one lone pair- seesaw two lone pairs- T-shape three lone pairs- linear tringonal bipyramidal electronic geometry polar sp3d
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AB6, AB5U, AB4U2
octahedral electronic geometry square planar AB5U- square pyramidal AB6- octahedral sp3d2 nonpolar
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ternary acids and their salts
contain three elements: hydrogen, oxygen, and another nonmetal an -ic acid
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boric acid
H3BO3
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carbonic acid
H2CO3
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silicic acid
H4SiO4
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nitric acid
HNO3
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phosphoric acid
H3PO4
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arsenic acid
H3AsO4
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sulfuric acid
H2SO4
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selenic acid
H2SeO4
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telluric acid
H6TeO6
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chloric acid
HClO3
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bromic acid
HBrO3
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iodic acid
HIO3
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ternary acids indicating the higher oxidation state
(stem)ic acid
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ternary acids indicating the lower oxidation state
(stem)ous acid
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anions of -ous acids
have -ite suffixes
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anions of -ic acids
have -ate suffixes
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nitrous acid
HNO2
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nitric acid
HNO3
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sulfurous acid
H2SO3
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sulfuric acid
H2SO4
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chlorous acid
HClO2
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chloric acid
HClO3
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sodium nitrite
NaNO2
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sodium nitrate
NaNO3
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sodium sulfite
Na2SO3
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sodium sulfate
Na2SO4
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sodium chlorite
NaClO2
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sodium chlorate
NaClO3
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hypo-
indicates the lowest oxidation state when there are two ternary acids of a central nonmetal
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per-
highest oxidation state when there are more than two ternary acids of a central nonmetal
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hypochlorous acid
HClO
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chlorous acid
HClO2
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chloric acid
HClO3
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perchloric acid
HClO4
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sodium hypochlorite
NaClO
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sodium chlorite
NaClO2
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sodium chlorate
NaClO3
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sodium perchlorate
NaClO4
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ternary salts
compounds that result from replacing the hydrogen in ternary acid with another ion contain the cation of a base and the anion of an acid
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sodium hydrogen carbonate
NaHCO3
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potassium hydrogen sulfate
KHSO4
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potassium dihydrogen phosphate
KH2PO4
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potassium hydrogen phosphate
KHPO4
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oxidation-reduction reactions
aka redox are "energy producing reactions"
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oxidation
algebraic increase in oxidation number process in which electrons are lsot
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reduction
an algebraic decrease in oxidation number process in which elctrons are gained
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oxidizing agents
substances that gain electrons and oxidize other substances always reduced
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reducing agents
substance that lose electrons and reduce other substances are always oxidized
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combination reactions
involve the cobination of two substances to form a compound
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metal + nonmetal --->
combination reaction produces a binary ionic compound            2Na + Cl2 ---> 2NaCl            2Al + 3Br2 ----> 2AlBr3
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nonmetal + nonmetal --->
combination reaction produce covalent binary compound                P4 + 5O2 ---> P4O10                P4 + 6Cl2 ---> 4PCl3                2As + 3Cl2 --->2AsCl3
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compound + compound --->
combination reaction produces a compound           NH3 + HCl ---> NH4Cl           Li2O + SO3 ---> Li2SO4
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compound---> element +element
decomposition reaction               2N2O ---> 2N2 + O2               CaCl2 ---> Ca + Cl2
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compound ---> compound + element
decomposition reaction           2H2O2 --->  2H2O + O2
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diproportion reaction
when the same element is oxidized and reduced
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compound ---> compound + compound
decomposition reaction          NH4HCO3 ---> NH3 + H2O + CO2
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displacement reactions
occur when one element displaces another element from a compound redox reactions in which the more active metal displaces the less active metal of hydrogen from a compound in aqueous solution
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more active metal + salt of less active metal --->
displacement reaction produces less active metal + salt of more active metal          2AgNO3 + Cu ---> Cu(NO3)2 + 2Ag
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active metal + nonoxidizing acid --->
displacement reaction produces hydrogen + salt of acid        2Al +3H2SO4 --->Al2(SO4)3 + 3H2
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active nonmetal + salt of less active nonmetal --->
displacement reaction produces less active nonmetal + salt of more active nonmetal      Cl2 + 2NaI ----> I2 + 2NaCl
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metathesis reactions
occur when two ionic aqueous solutions are mixed and the ions switch partners AX + BY ---> AY + BX sometimes called "double displacement" reactions
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neutralization reactions
type of metathesis reaction the reaction of an acid with a metal hydroxide base produces salt and water            HBr + KOH ---> KBr + H2O
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precipitation reactions
metathesis reactions insoluble compound is formed as a product
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gas-formation reactions
there is a formation of an insoluble or slightly soluble gas when there are no gaseous reactants
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