How Much Gas is Produced from 8.8g of N2O Decomposition at STP?

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The discussion focuses on calculating the volume of gases produced from the decomposition of 8.8 grams of dinitrogen monoxide (N2O) at standard temperature and pressure (STP). The correct stoichiometric reaction is 2N2O → 2N2 + O2, leading to the production of nitrogen and oxygen gases. Participants clarify the molar masses, noting that nitrogen is diatomic (N2), which affects the calculations. After correcting the calculations, the total volume of gases produced is determined to be 6.72 liters. The conversation emphasizes the importance of accurate stoichiometric relationships and proper unit conversions in gas volume calculations.
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Homework Statement


Dinitrogen monoxide (nitrous oxide) N2O decomposes producing nitrogen and oxygen gases.
The atomic masses are N: 14.0 and O: 16.0
The molar volume of an ideal gas at STP is 22.4 dm3/mol

Homework Equations


Calculate the total volume of produced gases at STP, when 8.8 grams of dinitrogen monoxide decomposes?

The Attempt at a Solution


Vtotal des gaz=VN+VO

N2O -------> 2N + O
8.8g---------mN
44g/mol------14g/mol

mN=(8.8*14)/44=2.8g
nN=2.8/14=0.5mol.

22.4=VN/nN
VN=22.4*nN
VN=22.4*0.5=11.2L?
 
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2,8/14 =/= 0.5. Make the division again.

OK, what's V_O equal with ? Then just add the results.
 
It shouldn't be like this ?
N2O -------> 2N + O
8.8g---------mN
44g----------2*14g

then mN=5.6g.
nN=mN/MN=5.6/14=0.4mol

22.4=VN/nN
VN=22.4*0.4=8.96L

Please tell me if this is correct, I'm confused if we should put 2*14 in this method or not. and then when calculating n, i used only 14.

if it's correct, we do same for O and then we add the volumes to each other to find the total volumes of gases.
 
Last edited:
The correct reaction should be of course

2\mbox{N}_{2}\mbox{O} \longrightarrow 2\mbox{N}_{2} + \mbox{O}_{2}

Apologies, I didn't check your equation for correction and jumped directly into the numbers.

Please, redo the calculations.

Thanks
 
2N2O-------> 2N2+O2
8.8g----------mN
2*44g--------2*28

mN=(2*28*8.8)/88=5.6g

nN=mN/MN
nN=5.6/14 (im not sure if we should divide by 14 or by (2*14))
nN=0.4mol

22.4=VN/nN
VN=22.4*0.4
VN=8.96L
 
Last edited:
No, no. Because of the molecule being diatomic, the molar mass of nitrogen is 2x14 = 28 grams/mol. So it's 0.2 moles of nitrogen = 4.48 liters of nitrogen normal cond of temp and pressure.
 
Last edited:
I don't get it, i just finished editing my previous solution, please check it!
 
chawki said:
2N2O-------> 2N2+O2
8.8g----------mN
2*44g--------2*28

mN=(2*28*8.8)/88=5.6g

nN=mN/MN
nN=5.6/14 (im not sure if we should divide by 14 or by (2*14))
nN=0.4mol

22.4=VN/nN
VN=22.4*0.4
VN=8.96L

The issue is in the bolded part. The number of moles of nitrogen is 5.6 grams/28 grams/mol = 0.2 mols.

So the volume which corresponds is 0.2 x 22.4 = 4.48l
 
ok so for O2

2N2O----------->2N2+O2
8.8g-----------------mO2
2*44g---------------32g

mO2= 3.2g
nO2=mO2/MO2=3.2/32=0.1 mol of O2

22.4=VO2/nO2
VO2=2.24L

Vtotal=4.48+2.24=6.72L

should we write mN or mN2
same thing for O2
 
Last edited:
  • #10
dextercioby said:
No, no. Because of the molecule being diatomic, the molar mass of nitrogen is 2x14 = 28 grams/mol. So it's 0.2 moles of nitrogen = 4.48 liters of nitrogen normal cond of temp and pressure.

The 2*14 comes from N2 or from 2N, i guess it's from N2!
 
  • #11
You need to check your arithmetics. The numbers in post #9 are wrong.
 
  • #12
Yes it was a terrible mistake, please check the post #9
 
  • #14
Thank you!
 

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