AP Chem review for test – Flashcards

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question
Cr l Cr3+ ll NO3- l NO l H+ l Pt is read how?
answer

The two redox half reactions are taking place as follows:

 

Cr --> Cr3+ + 3e-

3e- + 4H+ + NO3- --> NO + 2H2O

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anode is oxidation or reduction?
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oxidation - Anode and Oxidation, vowels go with vowels
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cathode is oxidation or reduction?
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reduction - Cathode and Reduction, consonants go with each other
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for ΔS, does a negative or positive sign tend toward order?
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negative
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covalently bonded oxides bubbled into water make?

(SO2 + H2O --> ?)

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acids

(H2SO3)

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Ionically bonded oxides bubbled into water form what?

(CaO + H2O --> ?)

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bases

(Ca(OH)2)

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a -ΔH means that the reaction is ____thermic and that heat is a ____________ in the equation
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exothermic, and product

(a negative relationship produces an ex)

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a polyatomic with 2 or more O for each H is a (strong/weak) acid?
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strong
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an acid with any halogen but F makes a (strong/weak) acid.
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strong
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HF is a (strong/weak) acid
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weak
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an acid with carbon is (strong/weak)
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weak
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an acid with a difference of 1 between H and O is (strong/weak)

(ex: H2SO3)

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weak
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group I and II elements + OH- make ____ bases

(Ca(OH)2)

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strong
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a base with a transition metal in it makes a ______ base
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weak
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a base with N & H together is _______

(NH3)

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weak
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amphoteric/amphiprotic
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could act as an acid or a base

(ex: HPO42-)

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Le Chatelier's principle
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when something is introduced into a system, the reaction proceeds to use that something up

;

can be used to explain the effect that temperature, concentration, or pressure changes have on a reaction

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equilibrium is a(n) ____________ step
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elementary
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Intermediate
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produced and used up in a mechanism

;

can't be used in rate law

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catalyst
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product and reactant, used to speed up a reaction
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clausius-clapyeron equation
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ln(P1/P2) = (-ΔHvap/R)((1/T2)-(1/T1))

ln(k1/k2) = (-Ea/R)((1/T2)-(1/T1))

 

R=8.31 J/molxK

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integrated rate laws
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zero order: [A] = -kt+[A]o

first order: ln[A] = -kt+ln[A]o

second order: 1/[A]=kt+(1/[A]o)

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half-life equations
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zero order: [A]o/2k

first order: .693/k

second order: 1/[A]ok

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what 4 things speed up a reaction?
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addition of a catalyst, or the increase of heat, surface area, and concentration
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osmotic pressure
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in the case of two solutions of different concentrations separated by a semi-permeable membrane, it is the pressure of water on the membrane to equalize the concentrations
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strong electrolyte
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completely dissolves in water
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weak electrolyte
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partially dissociates in water
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i
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van't hoff factor, measures the ions produced - reactant ions
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when ions are added, vapor pressure is __________, and the equation for the new vapor pressure is ___________
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lowered

Psoln=(mols of solvent/(mols solvent + (mols solute x i)))(Psolvent)

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when ions are added to a solution, the boiling point is __________

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elevated
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When ions are added to a solution, the freezing point is ___________
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lowered
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when ions are added to a solution, osmotic pressure is _________________
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elevated
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bond order
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(bonding e- - antibonding e-)/2
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bond energy
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goes down as radius goes up

low bond length means high BE

triple;double;single

BERP -; Bond Energy = Reactants - Products

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formal charge
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0 is ideal

if not ^, then most electronegative is -, while least is +

each atom gets 2 per lone pair, and 1 per bond

valence electrons - electrons controlled in the molecule

ex: CF4 - each bond is :::F-C

F: 7-7=0

C: 4-4=0

0(1) + 0(4)=0

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expanded octet
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large radii, low electronegativity, low zeff

ex: Xe, Kr, I, Br, S, Se, P

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incomplete octet
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Be (4 valence e-), B (6 valence e-)
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quantum numbers
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n - period # for s ; p orbitals, period-1 for d, -2 for f

l - orbital, s=0, p=1, d=2, f=3

m - can be any number between -l and l (pick 0 to be safe)

s - can be 1/2 or -1/2, doesn't matter which

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Heisenberg uncertainty principle
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the more we know about where a particle is right now, the less we know about how fast it's going and the direction that it's going, and vice versa
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Aufbau principle
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must fill to next level before jumping to n=1

(all of 2s and 2p must be filled before going to 3s)

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Hund's rule
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place 1 e- in each orbital before doubling up

(this creates magnetic field in molecules with any unfilled orbitals)

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isotope, isoelectronic, isomer
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isotope - same protons, different neutrons

isoelectronic - different elements, same e-

isomer - same formula, different structure

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organic naming - single/double/triple bonds and 1-8 carbons in backbone
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-ane -; only single bonds in backbone

-ene -; has a double bond in backbone

-yne -; has a triple bond in backbone

;

meth- one

eth- two

prop - three

but - four

pent - five

hex - six

hept - seven

oct - eight

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hydrogen bonds
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when hydrogen bonds to N,O,F

only in a polar molecule

form of IMF

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network covalent
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strongest type of bond

Si forms a network covalent

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AX2
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linear, 180o
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AX3
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trigonal planar, 120o
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AX2E
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bent, 120o
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AX4
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tetrahedral, 109.5o
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AX3E
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trigonal pyramidal, 109.5o
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AX2E2
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bent, 109.5o
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AX5
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trigonal bipyramidal, 90o, 120o
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AX4E
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seesaw, 180o, 120o
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AX3E2
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T-Shape, 180o, 90o
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AX2E3
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linear, 180o
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AX6
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octahedral, 90o
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AX5E
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square pyramidal, 90o
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AX4E2
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square planar, 90o
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AX7
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pentagonal bipyramidal, 90o, 72o
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alcohol
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-anol, OH is bonded to an outer backbone carbon
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aldehyde
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-anal, O is double bonded to an outer backbone carbon
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ketone
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-anone, O is double bonded to an inner backbone carbon
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carboxylic acid
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-anoic acid, O double bonded and OH bonded to the same end backbone carbon, called carboxyl group
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oxidation numbers
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element is 0

Monatomic ion is same as charge

F = -1

O = -2, except in peroxides = -1

H = +1

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state change ;G=?
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;G=0
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colors:

Cr

MnO4-

Fe

Co

Ni

Cu

Pb as solid

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Cr - orangeish

MnO4- - purple

Fe - orange

Co - pink

Ni - green

Cu - blue

Pb as solid - yellow

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MnO4- reduced in acidic produces _________
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Mn2+
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MnO2 reduced in acidic produces _________
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Mn2+
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MnO4- reduced in neutral/basic produces _________
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MnO2(s)
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Cr2O72- reduced in acidic produces _________
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Cr3+
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concentrated HNO3 reduced produces _________
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NO2
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dilute HNO3 reduced produces _________
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NO
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hot, concentrated H2SO4 reduced produces _________
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SO2
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metal-ic ions reduced produces _____________

(Fe3+)

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metal-ous ions

(Fe2+)

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Free halogens reduced produces ______________

(I2)

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halide ions

(I-)

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Na2O2 reduced produces _____________
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NaOH
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HClO4 reduced produces _________
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Cl-
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H2O2 reduced produces _________
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H2O
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C2O42- oxidized produces _________
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CO2
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Halide ions oxidized produces _________

(I-)

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free halogens

(I2)

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free metals oxidized produces _________

(Fe)

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metal ions

(Fe2+)

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SO3- or SO2 oxidized produces _________
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SO4-
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NO2- oxidized produces _________
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NO3-
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free halogens oxidized in a dilute, basic soln produces _________
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hypohalite ions

;

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free halogens oxidized in a concentrated basic soln produces _________
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halate ions
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metal-ous ions oxidized produces _________

(Fe2+)

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metal-ic ions

(Fe3+)

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H2O2 oxidized produces _________
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O2
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Lewis Acid/Base combination

(BF3 + NH3 --> ?)

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addition

(BF3NH3)

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metallic oxides + P4O10 --> ?

(CaO + P4O10 --> ?)

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metallic phosphates

(Ca3(PO4)2)

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metallic oxides + CO2 --> ?

(CaO + CO2 --> ?)

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metallic carbonates

(CaCO3)

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metallic oxides + SO3 --> ?

(CaO + SO3 --> ?)

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metallic sulfates

(CaSO4)

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metals + gases --> ?

(Na + O2 --> ?)

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ionic crystals

(Na2O)

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metallic oxides + SO2 --> ?

(CaO + SO2 --> ?)

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metallic sulfites

(CaSO3)

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H2O2--> ?
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O2 + 2 H2O
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metallic carbonates --> ?

(CaCO3 --> ?)

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metallic oxides + CO2

(CaO + CO2)

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metallic chlorates --> ?

(NaClO3)

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metallic chlorides + O2

(NaCl + O2)

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NH3 + limited O2 --> ?
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NO + H2O
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NH3 + excess O2 --> ?
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NO2 + H2O
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metallic sulfides + O2 --> ?

(CaS + O2 --> ?)

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metallic oxide + SO2

(CaO + SO2)

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Ideal behavior is when pressure is _______ and temperature is ________ because ________________
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low pressure, high temperature, because particles don't come close enough for IMFs to form
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Eocell = ?
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Eoreduction - Eooxidation
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voltaic/galvanic cell means ________________
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spontaneous
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electrolytic cell means __________________
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nonspontaneous
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concentration in a saturated solution is ________________
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independent of volume
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solubility: NO3-
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all nitrates are soluble
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solubility: C2H3O2-
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all acetates are soluble except AgC2H3O2
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solubility: ClO3-
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All Chlorates are soluble
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solubility: Cl-
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all Chlorides are soluble except AgCl, Hg2Cl2, and PbCl2
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solubility: Br-
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all bromides are soluble except AgBr, PbBr2, Hg2Br2, and HgBr2
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solubility: I-
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all iodides are soluble except AgI, Hg2I2, HgI2, and PbI2
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solubility SO42-
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all sulfates are soluble except BaSO4, PbSO4, Hg2SO4, CaSO4, Ag2SO4, and SrSO4,
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solubility group IA elements and NH4+
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all are soluble
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solubility CO32-
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all carbonates are insoluble except those of the IA elements and NH4+
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solubility CrO42-
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all chromates are insoluble except those of the IA elements, NH4+, CaCrO4, and SrCrO4
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solubility OH-
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all hydroxides are insoluble except those of the IA elements, NH4+, Ba(OH)2, Sr(OH)2, and Ca(OH)2
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solubility PO43-
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all phosphates are insoluble except those of the IA elements and NH4+
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solubility SO32-
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All sulfites are insoluble except those of the IA elements and NH4+
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Solubility S2-
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all sulfides are insoluble except those of the IA and IIA elements and NH4+
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end point of a titration
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the point in a titration at which the indicator undergoes it's color change
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