If 3.50 mol of Fe reactants with 3.00 mol of oxygen in the
following reaction.
4 Fe(s) + 3 O2(g) → 2 Fe2O3(s)
Which of the following statements is correct?
a. O2 is the limiting reactant and 2.00 mol of product can be produced.
b. O2 is the excess reactant and 2.00 mol of product can be produced.
c. Fe is the limiting reactant and 1.75 mol of product can be produced.
d .Fe is the excess reactant and 1.75 mol of product can be produced.
If 3.50 mol of Fe reactants with 3.00 mol of oxygen in the following reaction. 4...
cal 22) Given that 4 NH3 5 O2-4 NO+6 HyO, if 3.00 mol NH3 were made to react with excess of 22) Oxygen gas, the amount of H2O formed would be A) 4.50 mol. B) 2.00 mol. C) 6.00 mol. D) 3.00 mol. E) none of the above 23) Which of the following statements is FALSE? A) The actual yield is the amount of product actually produced by a chemical reaction. B) The percent yield- 23) Actual Yield Theoretical Yield...
22) Given that 4 NH3 +50,-- 4 NO:6 HO.if 3.00 mol NHy were made to react with excess of oxygen gas, the amount of H2O formed would be: A) 4.50 mol B) 2.00 mol. C) 6.00 mol. D) 3.00 mol. E) none of the above 23) Which of the following statements is FALSE? A) The actual yield is the amount of product actually produced by a chemical reaction. B) The percent yield - Actual Yield Theoretical Yield"100 C) The limiting...
The overall reaction in commercial heat packs can be represented as the reaction below. 4 Fe(s) + 3 O2(g) → 2 Fe2O3(s), ΔH = -1652 kJ (a) How much heat is released when 4.23 mol iron is reacted with excess O2? (b) How much heat is released when 1.48 mol Fe2O3 is produced? c) How much heat is released when 1.34 g iron is reacted with excess O2? (d) How much heat is released when 13.10 g Fe and 2.05...
Identify limiting reactants (maximum product method). Consider the reaction of methane with ammonia and oxygen. 2CH4 (g) + 2NH3(g) + 302 (g) —2HCN (g) + 6H20 (1) Determine the limiting reactant in a mixture containing 175 g of CH4, 160 g of NH3, and 607 g of O2. Calculate the maximum mass (in grams) of hydrogen cyanide, HCN, that can be produced in the reaction. The limiting reactant is: CH4 O2 NH3 Amount of HCN formed = g
Based on the balanced reaction 4 Fe + 3 O2 → 2 Fe2O3, a student starts this reaction with these amounts of chemicals: 12 mol Fe, 15 mol O2, and 0 mol Fe2O3. What chemical is the limiting reactant?
0.320 mol of octane is allowed to react with 0.840 mol of oxygen. which is the limiting reactant +Limiting Reactants < 17 of 21 > Balanced chemical equation 2 C3H18 (9) + 25 O2 (g)—16 CO2 (g) +18 H2O(g) Part B 0.320 mol of octane is allowed to react with 0.830 mol of oxygen. Which is the limiting reactant? ► View Available Hint(s) O octane oxygen Submit
1. Consider the following reaction: Fe2O3(s) + 3 COA) 2 Fe(s) + 3 CO29) a. Using dimensional analysis, calculate how many grams of carbon dioxide, CO2, (44.0g/mol) should be produced from 15.97g of Fe,0, (159.7g/mol) reacting with 230.0 g of CO in the following reaction? (6 pts) b. Which is the limiting reactant? (4 points) c. If the % yield of this reaction was 10% how many grams of CO2 would be produced? (4 pts) 2. Balance the following chemical...
1. Consider the following reaction: Fe2O3(s) + 3 COA) 2 Fe(s) + 3 CO29) a. Using dimensional analysis, calculate how many grams of carbon dioxide, CO2, (44.0g/mol) should be produced from 15.97g of Fe,0, (159.7g/mol) reacting with 230.0 g of CO in the following reaction? (6 pts) b. Which is the limiting reactant? (4 points) c. If the % yield of this reaction was 10% how many grams of CO2 would be produced? (4 pts) 2. Balance the following chemical...
40. Consider the following reaction: 4 Fe + 3 02 → 2 Fe2O3 14.2 grams of iron react with an excess of oxygen gas, what mass of Fe2O3 can form? (Fe2O3 = 159.70 g/mol)
For the reaction below, if 8.0 mol of Fe and 5.0 mol of O2were mixed, how many moles of the excess reagent would remain?4 Fe(s)+3 O2 (g) → 2 Fe2O3(s) I know the answer is 1.3 mol Fe..... but i do not understand the steps and reasoning behind the steps. Please explain.