A certain manganese oxide contains 72% manganese. What is the empirical formula?

1 Answer
MeneerNask
May 1, 2017

Since % litterally means "per hundred" let's take a 100g sample.

Explanation:

We convert the mass ratio into mol ratio:

Then 72g of this is Manganese.
The molar mass of Mn=55, so 72gharr72/55=1.31mol of Mn

The 28g of Oxygen (molar mass O= 16) breaks down to:
28gharr28/16=1.75mol of O

The mol ratio MndivO=1.31div1.75=0.75div1=3div4

Empirical formula: Mn_3O_4

Note:
This works if you take any other sample size, but then there are more calculations to do.

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