A $0.967g$ mass of an oxide of phosphorus contains $0.422g$ of phosphorus. What is its empirical formula?

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Answer 1 · 2017-09-11T20:09:39

We gots $P_2O_5$ .....

We calculate the empirical formula....

$"Moles of phosphorus"=(0.422*g)/(30.9737*g*mol^-1)=0.01361*mol$

$"Moles of oxygen"=(0.967*g-0.422*g)/(15.999*g*mol^-1)=0.0341*mol$

We divide thru by the SMALLEST MOLAR quantity to give an empirical formula of $P_((0.01361)/(0.01361))O_((0.0341)/(0.01361))$

$-=PO_(2.50)$ ....

Now the empirical formula is by definition the simplest WHOLE number ratio, so we double the trial formula to give.....

$P_2O_5$

The actual molecule is $P_4O_10$ but we would need further data to assess this.

A 0.967*g0.967*g mass of an oxide of phosphorus contains 0.422*g0.422*g of phosphorus. What is its empirical formula?