Question

The combustion of liquid ethanol (C2H5OH) produces carbon dioxide and water. After 4.61 mL of ethanol...

The combustion of liquid ethanol (C2H5OH) produces carbon dioxide and water. After 4.61 mL of ethanol (density=0.789gml−1) was allowed to burn in the presence of 15.60 g of oxygen gas, 3.73 mL of water (density=1.00gml−1) was collected.

Part A

Determine the limiting reactant for the reaction. (Hint: Write a balanced equation for the combustion of ethanol.)

Determine the limiting reactant for the reaction. (: Write a balanced equation for the combustion of ethanol.)

ethanol
oxygen

Part B

Determine the theoretical yield of H2O for the reaction.

Express your answer using three significant figures.r

Part C

Determine the percent yield of H2O for the reaction.

Express your answer using three significant figures.

0 0
Add a comment Improve this question Transcribed image text
Answer #1

Answer:

The balanced reaction for the combustion of ethanol is

C2H5OH(l) + 3O2(g) --------> 2CO2(g) + 3H2O(l)

Given volume of ethanol=4.61 mL and density=0.789 g/mL

Therefore mass of ethanol=density x volume=0.789 g/mL x 4.61 mL =3.637 g.

Molar mass of ethanol=46.07 g/mol

Moles of ethanol=mass/molar mass=3.637 g/46.07 g/mol=0.07895 mol

Mass of O2(g)=15.60 g

Molar mass of O2=32 g/mol.

Moles of O2=15.60 g/32 g/mol=0.4875 mol.

From the balanced equation, the mole ratio between

Ethanol:O2=1:3

But here, ethanol:O2=0.07895:0.4875=1:6.17.

Therefore O2(g) is in excess.

Part A:

The limiting reactant is Ethanol.

Part B:

The moles of H2O formed=3 x moles of ethanol=3 x 0.07895 mol=0.23685 mol.

Molar mass of H2O=18g/mol

Theoretical yield of H2O formed=moles x molar mass=0.23685 mol x 18 g/mol=4.263 g ~ 4.26 g.

Part C:

Given volume of H2O=3.73 mL and density=1 g/mL

Given experimental yield=3.73 mL x 1 g/mL=3.73 g.

Therefore % yield=(experimental mass/theoretical mass) x 100

% yield=(3.73 g/4.26 g) x 100=87.49 %.

% yield ~ 87.5 %.

Please let me know if you have any doubt. Thanks.

Add a comment
Know the answer?
Add Answer to:
The combustion of liquid ethanol (C2H5OH) produces carbon dioxide and water. After 4.61 mL of ethanol...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • 106. The combustion of liquid ethanol (C,H,OH) produces carbon dioxide and water. After 4.62 ml of...

    106. The combustion of liquid ethanol (C,H,OH) produces carbon dioxide and water. After 4.62 ml of ethanol density = 0.789 g/ml) is allowed to burn in the presence of 15.55 g of oxygen gas, 3.72 ml. or water (density = 1.00 g/mL) is collected. Determine the limiting reactant, theoretical vield of H.O. and percent yield for the reaction. Ilint: Write a balanced equation for the combustion of ethanol.)

  • The balanced equation for the combustion of ethanol into carbon dioxide and water is found below.....

    The balanced equation for the combustion of ethanol into carbon dioxide and water is found below.. C2H5OH (l) + 3 O2 (g) ----> 2 CO2 (g) + 3 H2O (l) a.calculate how many moles of oxygen gas are contained in 659 ml sample of oxygen at 1.07 atm and 21 degrees celcius b. a glass of wine contains 9.33g of ethanol. how many moles of oxygen would be needed to burn the ethanol contained in one glass of wine c....

  • 1) Determine the theoretical yield of H2O for the reaction. 2)Determine the percent yield of H2O...

    1) Determine the theoretical yield of H2O for the reaction. 2)Determine the percent yield of H2O for the reaction. The combustion of liquid ethanol (C2H5OH) produces carbon dioxide and water. After 4.61 mL of ethanol (density=0.789g/ml) was allowed to burn in the presence of 15.70 g of oxygen gas, 3.74 mL of water (density=1.00g/ml) was collected.

  • 2.21 g of ethanol C2H5OH and 3.55 of oxygen O2 are reacted. Molar mass of C2H5Oh...

    2.21 g of ethanol C2H5OH and 3.55 of oxygen O2 are reacted. Molar mass of C2H5Oh 46.08 g/mol. O2 32.00 g/mol. Co2 44.01 g/mol. H20 18.02 g/mol a)What is the limiting reactant? b) what is the theoretical yield of carbon dioxide in grams will be obtained in the combustion reaction. starting with the amount of reagents given in part (a). assuming the reaction goes in 100% yield. c) If 0.951 f of CO2 is obtained from the reaction above, what...

  • For the unbalanced combustion reaction shown below, 1 mol of ethanol, C2H5OH, releases 327 kcal (1370...

    For the unbalanced combustion reaction shown below, 1 mol of ethanol, C2H5OH, releases 327 kcal (1370 kJ). C2H5OH+O2→CO2+H2O How much heat (in kilocalories) is released from the combustion of 7.38 g of ethanol? How many grams of C2H5OH must be burned to raise the temperature of 360.0 mL of water from 20.0 ∘C to 100.0 ∘C? (The specific heat of water is 1.00 cal/g⋅∘C or 4.184 J/(g⋅∘C). Assume the density of water at 20.0∘C is 1.00 g/mL.

  • part B Limiting Reactants Theoretical Yield, & Percent Yield (10 points): 18. 3.78 Liers of gasoline...

    part B Limiting Reactants Theoretical Yield, & Percent Yield (10 points): 18. 3.78 Liers of gasoline reacts with 6510 Lof oxygen gas, the gosoline will combust forming carbon dioxide gas and water vapor (gaseous water). Assume that gasoline is liquid octane, CeHie (density g/mL), and that the reaction occurs at 1.0o atm and 273 K. a, write a balanced equation for this combustion reaction in the box below: t H20 2 H 18 the theoretical yield of carbon b. What...

  • 3. Consider the combustion reaction that occurs when hexene (C614 in the presence of oxygen. action...

    3. Consider the combustion reaction that occurs when hexene (C614 in the presence of oxygen. action that occurs when hexene (CH2) is burned a. Write a balanced chemical equation for the reaction. b. If 8.943 g of hexane reacts with 14.63 g of oxygen, which will be the limiting reactant? What is the theoretical yield of carbon dioxide, in grams? C. What mass of water will be produced by the reaction?

  • 1. Moles of Reactant to Mass of Reactant: Identify the iodide ions and ozone in the...

    1. Moles of Reactant to Mass of Reactant: Identify the iodide ions and ozone in the balanced chemical equation. Use mole ratio, then convert to grams. A method used by the EPA for determining the ozone concentration in the air is to pass an air sample through a bubbler containing iodide ions. The iodide ions remove the ozone according to the following reaction: O3(g) + 2 I-(aq) + H2O(l)  → O2(g) + I2(aq) + 2 OH-(aq) How many grams of ozone...

  • --xal Yield and Percent Yield combusts with oxygen to form carbon dioxide and water by the...

    --xal Yield and Percent Yield combusts with oxygen to form carbon dioxide and water by the following reaction: pentane combud CsHız(l) + 8 O2(g) → 5 CO2(g) + 6 H2O(g) a. If 8.00 g of pentane is mixed with 10.0 g of oxygen, which is the limiting reactant? (Hint: compare it to either of the products). b. What is the theoretical yield (in grams) of carbon dioxide and water for this reaction? Hydrogen reacts with nitrogen to form ammonia by...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT