1 Answer

Paxdiablo · Answer 1 · 2022-11-19T11:06:20+0000

Answer:
O_2 is the limiting reagent, 180 g of water is produced

Step-by-step explanation:

To calculate the moles :

$\text{Moles of solute}=\frac{\text{given mass}}{\text{Molar Mass}}$

$\text{Moles of} H_2=(24.0g)/(2g/mol)=12moles$

$\text{Moles of} O_2=(160.0g)/(32g/mol)=5moles$

$2H_2+O_2\rightarrow 2H_2O(g)$

According to stoichiometry :

1 mole of
O_2 require 2 moles of
H_2

Thus 5 moles of
O_2 will require=
(2)/(1)* 5=10moles of
H_2

Thus
O_2 is the limiting reagent as it limits the formation of product and
H_2 is the excess reagent.

As 1 mole of
O_2 give = 2 moles of
H_2O

Thus 5 moles of
O_2 give =
(2)/(1)* 5=10moles of
H_2O

Mass of
$H_2O=moles* {\text {Molar mass}}=10moles* 18g/mol=180g$

Thus 180 g of
H_2O will be produced from the given masses of both reactants.

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