What mass of oxygen gas can be be produced when 1.15 g sodium peroxide reacts with excess water?

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What mass of oxygen gas can be be produced when 1.15 g sodium peroxide reacts with excess water?

${2Na}_{2} O_{2} + H_{2} O$ $"2Na"_2"O"_2 + "H"_2"O"$ $\to$ $rarr$ ${4NaOH + O}_{2}$ $"4NaOH + O"_2"$

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Answer 1 · 2015-07-03T20:49:10

The mass of oxygen that be produced from 1.15 g sodium peroxide is 0.236 g.

Explanation:

${2Na}_{2} O_{2} {+2H}_{2} O$ $"2Na"_2"O"_2"+2H"_2"O"$ $\to$ $rarr$ $4NaOH + O_{2}$ $"4NaOH"+"O"_2"$

Determine the mole ratios between ${Na}_{2} O_{2}$ $"Na"_2"O"_2$ and $O_{2}$ $"O"_2"$ from the balanced equation.

$\frac{{2 mol Na}_{2} O_{2}}{{1 mol O}_{2}}$ $("2 mol Na"_2"O"_2)/("1 mol O"_2")$ and $\frac{{1 mol O}_{2}}{{2 mol Na}_{2} O_{2}}$ $("1 mol O"_2)/("2 mol Na"_2"O"_2")$

Determine the molar masses of ${Na}_{2} O_{2}$ $"Na"_2"O"_2$ and $O_{2}$ $"O"_2$ .

${Na}_{2} O_{2} :$ $"Na"_2"O"_2:$ $(2 \times 22.990) + (2 \times 15.999) = 77.978 g/mol$ $(2xx22.990)+(2xx15.999)="77.978 g/mol"$

$O_{2} :$ $"O"_2:$ $(2 \times 15.999) = 31.998 g/mol$ $(2xx15.999)="31.998 g/mol"$

Determine the number of moles of ${Na}_{2} O_{2}$ $"Na"_2"O"_2$ in $1.15 g$ $"1.15 g"$ using its molar mass.

$1.15color(red)cancel(color(black)("g Na"_2"O"_2))xx(1"mol Na"_2"O"_2)/(77.978color(red)cancel(color(black)("g Na"_2"O"_2)))="0.014748 mol Na"_2"O"_2"$

Determine the number of moles of $"O"_2"$ that can be produced by $"0.014748 mol Na"_2"O"_2$ by multiplying the moles of $"Na"_2"O"_2$ times the mole ratio with $"O"_2$ in the numerator.

$0.014748 color(red)cancel(color(black)("mol Na"_2"O"_2))xx("1 mol O"_2)/(2 color(red)cancel(color(black)("mol Na"_2"O"_2)))="0.0073740 mol O"_2"$

Determine the mass in grams in $"0.0073740 mol O"_2"$ by multiplying the moles $"O"_2"$ times its molar mass.

$0.0073740 color(red)cancel(color(black)("mol O"_2))xx(31.998"g O"_2)/(1color(red)cancel(color(black)("mol O"_2)))="0.236 g O"_2"$

Answer 2 · 2015-07-04T14:29:43

First balance the equation to find that so the moles of $O_2$ released is equal to one-half the moles of $Na_2O_2$ added:
$2 Na_2O_2 + 2 H_2O rarr 4 NaOH + O_2$

Explanation:

The molar mass of $Na_2O_2$ is 77.98 g/mol, so the moles of $Na_2O_2$ is
$(1.15g)/(77.98 g/(mol))=0.01456$ mol
(carries 1 extra sig fig for intermediate calculation)

The molar mass of $O_2$ is 32.00 g/mol, so the mass of $O_2$ released is
$1/2 times 0.01456 mol times 32.00 g/(mol)=0.233$ g

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What mass of oxygen gas can be be produced when 1.15 g sodium peroxide reacts with excess water?

${2Na}_{2} O_{2} + H_{2} O$ $"2Na"_2"O"_2 + "H"_2"O"$ $\to$ $rarr$ ${4NaOH + O}_{2}$ $"4NaOH + O"_2"$

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What mass of oxygen gas can be be produced when 1.15 g sodium peroxide reacts with excess water?

"2Na"_2"O"_2 + "H"_2"O"2Na2O2+H2O"2Na"_2"O"_2 + "H"_2"O"rarr→rarr"4NaOH + O"_2"4NaOH + O2"4NaOH + O"_2"

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${2Na}_{2} O_{2} + H_{2} O$ $"2Na"_2"O"_2 + "H"_2"O"$ $\to$ $rarr$ ${4NaOH + O}_{2}$ $"4NaOH + O"_2"$