Question

Determine the limiting reactant and calculate the number of grams of nitrogen dioxide, NO, that can be formed when 105 g of n
0 0
Add a comment Improve this question Transcribed image text
Answer #1

Na +20₂ → 2NO 2 Mole N₂ = man ly) Molar massig/mol) 105g = 2.75 mol = 28 glamol 3.07 & mole O₂ = 98.59 = 2 mol 30 28 g/mol O

Add a comment
Know the answer?
Add Answer to:
Determine the limiting reactant and calculate the number of grams of nitrogen dioxide, NO, that can...
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
  • Chemistry limiting reactant how many of grams? Chemistry Q1 Nitrogen occording dioxide to the reacts with...

    Chemistry limiting reactant how many of grams? Chemistry Q1 Nitrogen occording dioxide to the reacts with water to form nitric acid and nitrogen monoxide following unbalanced reaction: NO₂ g) + H₂O 4 HNO3 cag) + No (g) If we start with 11.69 of nitrogen dioxide and 25.8 g of water, how many groms of the excess reactant are leftover after the reaction is complete?

  • Determine the limiting reactant (LR) and the mass (in g) of nitrogen that can be formed...

    Determine the limiting reactant (LR) and the mass (in g) of nitrogen that can be formed from 50.0 g N 2O 4 and 45.0 g N 2H 4. Some possibly useful molar masses are as follows: N 2O 4 = 92.02 g/mol, N 2H 4 = 32.05 g/mol. N 2O 4( l) + 2 N 2H 4( l) → 3 N 2( g) + 4 H 2O( g) LR = N2O4, 45.7 g N2 formed LR = N2O4, 105 g...

  • Chemistry question Using limiting reactant Chemistry limiting reactant question . Iron (111) oxide with H to...

    Chemistry question Using limiting reactant Chemistry limiting reactant question . Iron (111) oxide with H to from iron and water according to the following reaction Fe234 +3H2(g) 2 Fe (s) + 3 H₂0 (3) If we start with 14,9g of iron (TL) oxide and 31.39 of hydrogen, how many grams (g) of water? question 2 Ethane (GHC) reacts with oxygen to form dioxide and water according to the following reaction 2C2H6c9) +703 (4) >4 (0, 2) + 6H40.9) If we...

  • Using the initial quantities for each reactant and the final quantity of nitrogen dioxide produced, determine...

    Using the initial quantities for each reactant and the final quantity of nitrogen dioxide produced, determine the limiting reactant, theoretical yield and the percent yield? 54.8 g ammonia 29.8 g oxygen 12.4 nitrogen dioxide 4NH3(g) + 5O2(g) = 4NO(g) + 6H2O(g)

  • Question 1: For the following reaction, 8.72 grams of nitrogen gas are allowed to react with...

    Question 1: For the following reaction, 8.72 grams of nitrogen gas are allowed to react with 1.04 grams of hydrogen gas . nitrogen(g) + hydrogen(g) = ammonia(g) What is the maximum mass of ammonia that can be formed? grams What is the FORMULA for the limiting reagent? What mass of the excess reagent remains after the reaction is complete? grams Question 2: For the following reaction, 10.8 grams of glucose (C6H12O6) are allowed to react with 15.9 grams of oxygen...

  • 35 and 36 thank you QUESTION 35 Determine the limiting reactant (LR) and the mass (in...

    35 and 36 thank you QUESTION 35 Determine the limiting reactant (LR) and the mass (in g) of nitrogen that can be formed from 50.0 g N204 and 45.0 g N2H4. Some possibly useful molar masses are as follows: N204 = 92.02 g/mol, N2H4 = 32.05 g/mol. N204(0) + 2 N2H40 →3N2(g) + 4H2O(9) O LR = N2H4, 59.0 g N2 formed O No LR, 45.0 g N2 formed O LR = N2H4, 13.3 g N2 formed O LR =...

  • The limiting reactant is the chemical substance that determines the amount of product(s) that can ultimately...

    The limiting reactant is the chemical substance that determines the amount of product(s) that can ultimately be formed in a reaction. During the reaction, the limiting reactant is completely consumed or used up, and therefore, causes the reaction to stop The limiting reactant can be identified through stoichiometric calculations. After comparing the results, the reactant that produces the smaller mass of product is identified as the limiting reactant. Determine the excess reactant and calculate the mass of the remaining excess...

  • Limiting Reactant, Theoretical Yield and Percent Yield 2. Pentane combusts with en to form carbon dioxide...

    Limiting Reactant, Theoretical Yield and Percent Yield 2. Pentane combusts with en to form carbon dioxide and water by the following reaction: CsHız(1) + 8 O2(g) → 5 CO2(g) + 6H2O(g) a. If 8.00 g of pentane is mixed with 10.0 g of oxy compare it to either of the products). he is mixed with 10.0 g of oxygen, which is the limiting reactant? (Hint: b. What is the theoretical yield (in grams) of carbon dioxide and water for this...

  • --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...

  • chemistry limiting reactant question 3 Nitrogen monoxide reacts with chlorine to form nitrosyl chloride according to...

    chemistry limiting reactant question 3 Nitrogen monoxide reacts with chlorine to form nitrosyl chloride according to the following Unbalanced reaction, Nog)+ Cl2(g) → Nocle) 1 If we start with 12.56 of nitrogen monoxide and 17,8 g of chlorine. how many grams of the excess reactant are leftover after the reaction is complete?

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