katyalatke92 katyalatke92

13-03-2022
Chemistry

contestada

How many grams of o2 are needed to produce 45.8 grams of Fe203 in the following
reaction?
4Fe(s) + 302(g)
2Fe2O3(s)

Respuesta :

tharunikand7470 tharunikand7470

13-03-2022

Answer:

Back track,

45.8 grams of Fe2O3*(1 mole/159.69 g)= moles of Fe2O3

moles of Fe2O3 *(3 moles of O2/2 moles of Fe2O3)=moles of O2

moles of O2*(32.0g of O2/1mole)= mass of O2

Explanation:

mark as brainiest,have a good day

Answer Link

lesleyogie6 lesleyogie6

13-03-2022

Explanation:

45.8 grams of Fe2O3*(1 mole/159.69 g)= moles of Fe2O3

moles of Fe2O3 *(3 moles of O2/2 moles of Fe2O3)=moles of O2

moles of O2*(32.0g of O2/1mole)= mass of O2

Answer Link

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