1answer.
Ask question
Login Signup
Ask question
All categories
  • English
  • Mathematics
  • Social Studies
  • Business
  • History
  • Health
  • Geography
  • Biology
  • Physics
  • Chemistry
  • Computers and Technology
  • Arts
  • World Languages
  • Spanish
  • French
  • German
  • Advanced Placement (AP)
  • SAT
  • Medicine
  • Law
  • Engineering
Anastasy [175]
3 years ago
8

What is the theoretical yield of aluminum oxide if 1.40 mol of aluminum metal is exposed to 1.35 mol of oxygen?

Chemistry
1 answer:
vladimir2022 [97]3 years ago
7 0

Answer:

71.372 g or 0.7 moles

Explanation:

We are given;

  • Moles of Aluminium is 1.40 mol
  • Moles of Oxygen 1.35 mol

We are required to determine the theoretical yield of Aluminium oxide

The equation for the reaction between Aluminium and Oxygen is given by;

4Al(s) + 3O₂(g) → 2Al₂O₃(s)

From the equation 4 moles Al reacts with 3 moles of oxygen to yield 2 moles of Aluminium oxide.

Therefore;

1.4 moles of Al will require 1.05 moles (1.4 × 3/4) of oxygen

1.35 moles of Oxygen will require 1.8 moles (1.35 × 4/3) of Aluminium

Therefore, Aluminium is the rate limiting reagent in the reaction while Oxygen is the excess reactant.

4 moles of aluminium reacts to generate 2 moles aluminium oxide.

Therefore;

Mole ratio Al : Al₂O₃ is 4 : 2

Thus;

Moles of Al₂O₃ = Moles of Al × 0.5

                         = 1.4 moles × 0.5

                         = 0.7 moles

But; 1 mole of Al₂O₃ = 101.96 g/mol

Thus;

Theoretical mass of Al₂O₃ = 0.7 moles × 101.96 g/mol

                                            = 71.372 g

You might be interested in
How many dm3 of hydrogen are released when 3 g of potassium is reacted with hydroiodic acid?
nlexa [21]

Answer:

V = 0.0859dm³

Explanation:

Hydroiodic acid, HI, reacts with potassium, K, to produce potassium iodide, KI, and hydrogen, as follows:

2HI + 2K → 2KI + H₂(g)

To solve this question we have to find the moles of hydrogen produced knowing that 2 moles of K produce 1 mole of H₂. With the moles of hydrogen we can find the volume of hydrogen assuming there are STP conditions:

<em>Moles K -Molar mass: 39.0983g/mol-</em>

3g * (1mol / 39.0983g) = 0.0767 moles of K

<em>Moles H₂:</em>

0.0767 moles of K * (1mol H₂ / 2mol K) = 0.03836 moles H₂

Using: PV = nRT; V = nRT / P

<em>Where V is volume in dm³,</em>

<em>n are moles of gas: 0.03836 moles,</em>

<em>R is gas constant = 0.082atm*dm³/molK</em>

<em>T is absolute temperature = 273.15K at STP</em>

<em>and P is pressure = 1atm</em>

The volume of the gas is:

V = 0.03836mol*0.082atm*dm³/molK*273.15K / 1atm

<h3>V = 0.0859dm³</h3>

8 0
3 years ago
Wolves prey heavily on pavers in a temperature forest ecosystem the diet of the beavers consist of leaves and branches and bark
Virty [35]

Answer:

<u>B. Primary Consumer</u>

Explanation:

It is the top of the food chain in this example.

5 0
3 years ago
A nucleus emits an alpha particle. What happens to the mass
babunello [35]

Answer:

the mass number decreases by 4 and the atomic number decreases by 2

4 0
3 years ago
How many moles of O2 are required to react with 2.4 mol of H2 ?
Leokris [45]

Answer:

1.2 moles

Explanation:

this is the balanced equation for the reaction of oxygen (O2) and hydrogen (H2), usually we don't write the 1 in front of O2

2H₂ + 10₂ → 2H₂O

the molar ratio of hydrogen to oxygen is 2 : 1

we are trying to react with 2.4 mol of H2 so the moles of O2 is half the number of moles of H2 = 2.4 ÷ 2 = 1.2 mol

another way to think of it:

2H₂ + 10₂

2 : 1

2.4 mol : x mol

to get from 2 to 2.4 multiply by 1.2, so do the same to the other side

1 × 1.2 = 1.2 mol

8 0
2 years ago
If 1.00 mol of argon is placed in a 0.500-l container at 22.0 ?c , what is the difference between the ideal pressure (as predict
labwork [276]
Calculate the pressure using the Van der Waals equation and the pressure using the ideal gas equation PV=nRT. Subtract the two pressures to get the difference. then:<span>Calculate how many moles of ammonia you have using the ideal gas equation PV=nRT. Multiply the number of moles by the molar mass of ammonia to get the mass in grams.</span>
5 0
3 years ago
Other questions:
  • A change of phase never accompanies a. a change in volume
    14·1 answer
  • En que consiste cada familia de la tabla periódica?
    12·1 answer
  • Please I need help with questions 1-4 and it’s very hard and I’m struggling with it and can you check if I did the punnet square
    13·1 answer
  • Young's experiment is performed with light from excited helium atoms (λ = 496 nm). fringes are measured carefully on a screen 1.
    6·1 answer
  • What is the mass of a sample of NH3 containing 7.20 × 1024 molecules of NH3? 161 grams 187 grams 203 grams 214 grams
    12·2 answers
  • Describe the difference between balanced forces and unbalanced forces.
    10·1 answer
  • Which solution is a homogeneous mixture?
    5·1 answer
  • A 0.652-g sample of a pure strontium halide reacts with excess sulfuric acid. the solid strontium sulfate formed is separated, d
    6·1 answer
  • How many atoms of fluorine are in 5.6x10^22 molecules of MgF2
    11·1 answer
  • HELPP ASAP PLEASE SEE IMAGES
    9·1 answer
Add answer
Login
Not registered? Fast signup
Signup
Login Signup
Ask question!