At equilibrium, the rates of the forward and reverse reactions are:
Equal
Give the formula of sulfurous acid
H2SO3
If the oxidation number of a substance decreases, it has undergone:
reduction
Which is the better indicator for titrating HCl with NH3? Phenolphthalein (color change pH 8~9) or methyl orange (color change pH 3~4)?
Methyl orange
Decrease
Consider the image below and determine whether the acid being titrated is weak or strong, and monoprotic, diprotic, or triprotic

weak, diprotic acid
Which of the following is a redox reaction?
A: 3 Cl2(g) + 2 Fe(s) --> 2 FeCl3(s)
B: HCl(aq) + NaOH(aq) --> H2O(l) + NaCl(aq)
A only
Which way would the equilibrium below shift if additional PbSO4 was added?
PbSO4(s) ⇄ Pb+2(aq) + SO4-2(aq)
There would be no shift.
Consider the equilibrium below:
2SO3(g) ⇌ S(s) + 3O2(g)
Give the equilibrium expression for the reaction:
Keq= [O2]3/[SO3]2
Calculate the pH of a 0.0056M solution of NaOH
pH = 14-pOH = 11.75
Which electrode does oxidation occur at?
The anode
Ca(s) + 2H+(aq) --> Ca(s) + H2(g)
E°cell = E°ox + E°red = 2.87V + 0V = +2.87V
Consider the reaction below:
A(aq) --> 2B(aq) Keq = 151
A reaction mixture has [A] =0.0550M and [B]=1.80M. Which way would the reaction be expected to shift?
Q<K, so reaction will shift to products.
Determine the concentration of an HCl solution given that 41.55mL of HCl is needed to titration 12.65mL of 0.998M Ca(OH)2.
[HCl] = 0.606M
Balance the following half reaction:
ClO4-(aq) + H+(aq) --> H2O(l) + Cl-(aq)
ClO4-(aq) + 8H+(aq) + 8e- --> 4H2O(l) + Cl-(aq)
Explain why Fe(OH)3, Ksp = 2.8*10-39, is less soluble in a pH 10 solution as compared to a pH 7 solution.
Common ion effect. A pH 10 solution has [OH-]=1.0*10-4M while a pH 7 solution has a [OH-]=1.0*10-7M
Calculate the [Pb3(PO4)2] in a saturated solution given Ksp of lead(II) phosphate = 9.9*10-55
[Pb3(PO4)2] = 6.2*10-12M
Determine the Ka of HCN given a 0.500M solution of HCN has a pH of 4.81
Ka = (10-4.81)2/(0.500M-10-4.81) = 4.8*10-10
What is the overall reaction that would occur if a solution of KF was electrolyzed with a 9V battery?
2H2O(l) --> 2H2(g) + O2(g)
Consider the values of Ka given, determine which side should dominate at equilibrium and explain your reasoning
HCO3-1: 4.7*10−11
HPO4-2: 4.8*10−13
HCO3-1(aq) + PO4-3(aq) ⇄ HPO4-2(aq) + CO3-2(aq)
Products. The weaker acid/base pair should dominate at equilibrium