Miscellaneous
Reaction Calculations
Molarity
Redox rxns/oxidation states
Equation balancing
200

how many molecules are in a mol?

6.022 x 1023

200

Convert 2.15 mols of Ca(ClO2)2 to grams

376 g Ca(ClO2)2 

200

What is the molarity of a 1.5 L solution containing 2.6 mols of CaCl2?

1.7 M CaCl2

200

Oxygen has an oxidation state of -2 except when it is bonded with what element?

Fluorine (F)

200

Balance the following equation:

__Na + __Cl2 --> __NaCl

2Na + Cl2 --> 2NaCl

300

What is the empirical formula of Glucose (C6H12O6)?

CH2O

300

How many grams of CO2 are produced when 3.50 moles of propane (C3H8) react completely with oxygen? the balanced equation is below:

C3H8 + 5O2 --> 3CO2 + 4H2O


462 g CO2

300

Calculate the mass of NaCl in 75.0 ml of a 0.525 M solution. 

2.30g NaCl

300

What is the oxidation state of each element in SF6?

S: +6

F: -1

300

Balance the following reaction:

__Pb(NO3)4 + __Na --> __NaNO3 + __ Pb


Pb(NO3)4 + 4Na --> 4NaNO3 + Pb

400

What is the mass % of each element in H2Cr2O7? Round each to 3 sig figs.

H: 0.925%

Cr: 47.7%

O: 51.4%

400

50.0 g of F2 gas is reacted with an excess of sodium. Given the following unbalanced equation, what is the mass of NaF produced?

Na + F2 --> NaF

111 g NaF

400

A 50.0 ml solution of 2.75M NaCl is diluted to 200. ml. What is the final concentration?

[NaCl] = 0.688 M

400

Find the oxidation states of all elements in the following three compounds:

1. ClO-

2. ClO2-

3. ClO3-

1. Cl = +1, O = -2

2. Cl = +3, O = -2

3. Cl = +5, O = -2

400

Balance: 

__Al + __HCl --> __AlCl3 + __H2

2Al + 6HCl --> 2AlCl3 + 3H2

500

Complete and balance the following acid-base reaction:

H3PO4 + Ca(OH)2 -->

2H3PO4 + 3Ca(OH)2 --> Ca3(PO4)2 + 6H2O

500

In the following reaction, 165 ml of 2.50M Fe(NO3)2 is added to a solution of excess NaOH to precipitate Fe(OH)2. The unbalanced reaction is displayed below:

__Fe(NO3)2(aq) + __NaOH(aq) --> __NaNO3(aq) + __Fe(OH)2(s)

What is the mass of Fe(OH2) produced?

Bonus 100 points: List the spectator ions

37.1 g Fe(OH2)

Spectator ions: Na+, NO3-

500

DAILY DOUBLE! 

15.0 ml of a 1.00 M solution of NaCN is diluted to 100. ml. A 20.0 ml  aliquot of this new solution is further diluted to 100. ml. What is the final  concentration?

0.0300 M NaCN

500

Label the following as reduced or oxidized (for #3, just look at Ag):

1. Fe3+ --> Fe+

2. Cl- --> Cl

3. Ag --> AgCl



1. Reduced

2. Oxidized

3. Oxidized

500

Balance the following chemical reaction:

__NaNO3 --> __Na3N + __O2 + __N2

6NaNO3 --> 2Na3N + 9O2 + 2N2

600

Balance, write the total ionic equation, net ionic equation, and list the spectator ions for the following reaction:

NaOH(aq) + MgCl2(aq) --> NaCl(aq) + Mg(OH)2(s)

Balanced equation: 2NaOH(aq) + MgCl2(aq) --> 2NaCl(aq) + Mg(OH)2(s)

Total ionic: 2Na+(aq) + 2OH-(aq) + Mg2+(aq) + 2Cl-(aq) --> 2Na+(aq) + 2Cl-(aq) + Mg(OH)2(s)

Net ionic: 2OH-(aq) + Mg2+(aq) --> Mg(OH)2(s)

Spectator ions: Na+, Cl-

600

80 g of NaOH reacts with 120.0 g of H2SO4. The unbalanced equation is shown below:

__NaOH + __H2SO4 --> __Na2SO4 + __H2O

1. How many grams of Na2SO4 should theoretically be produced? 2. What is the limiting reactant? 3. If 115 g of Na2SO4 are recovered, what is the % yield?

142g Na2SO4

Limiting reactant: H2SO4

% yield: 81.0%

600

85.0 ml of an 18.0 M solution of HNO3 is combined with 115 ml of a 2.50M solution of HNO3. What is the final concentration of this new solution?

9.10 M HNO3

600

Identify the oxidation number of each element in the reaction, then use arrows to indicate which atom is being oxidized and reduced.

2Fe + 3H2O --> Fe2O3 + 3H2

Reactant oxidation states: Fe = 0, H = +1, O = -2

Product oxidation states: Fe = +3, H = 0, O = -2

Reduced: H, oxidized: Fe

600

Balance the following combustion reaction:

__C125H202O24 + __O2 --> __CO2 + __H2O

2C125H202O24 + 327O2 --> 250CO2 + 202H2O