What is the empirical formula of a hydride prepared from 4*g4g of hydrogen, and 28*g28g of oxygen?

2 Answers
Alexandria
Apr 29, 2017

Yep!

Explanation:

You know that you have 4 grams of Hydrogen and 32 grams of Oxygen in your molecule so the first step is converting both weights given into moles. You use each molecules molecular weight (1.0079 g/mol for Hydrogen and 15.999 g/mol for Oxygen) to convert between moles and grams. These values are found on a periodic table!

("4g H")/1 * ("1mol H")/("1.0079g H") = "4mol H"4g H11mol H1.0079g H=4mol H

("32g O")/1 * ("1mol O")/("15.999g O") = "2mol O"32g O11mol O15.999g O=2mol O

After you know how many moles of each compound you have, look at the ratio and see if you can reduce like you would a fraction.

("4mol H")/("2mol O") = ("2mol H")/("1mol O") = H_2O4mol H2mol O=2mol H1mol O=H2O

This gives you your final answer!

anor277
Apr 30, 2017

The empirical formula is H_2OH2O.

Explanation:

The empirical formula is the simplest, whole number ratio defining constituent atoms in a species. And how do we get this? Well, we divide the elemental masses thru by the atomic masses of each element...........

"Moles of hydrogen"=(4.0*g)/(1.0*g*mol^-1)=4*molMoles of hydrogen=4.0g1.0gmol1=4mol

"Moles of oxygen"=(32.0*g)/(16.0*g*mol^-1)=2*molMoles of oxygen=32.0g16.0gmol1=2mol

If we divide thru by the smallest molar quantity (that of oxygen) we get H_2OH2O as the empirical formula.

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