Answer:
HCO₂
Step-by-step explanation:
From the information given:
The mass of the elements are:
Carbon C = 26.7 g; Hydrogen H = 2.24 g Oxygen O = 71.1 g
To determine the empirical formula;
First thing is to find the numbers of moles of each atom.
For Carbon:
![=26.7 \ g* (1 \ mol )/(12.01 \ g) \\ \\ =2.22 \ mol \ of \ Carbon](https://img.qammunity.org/2022/formulas/chemistry/college/lwbdk0q9sxn5szsikd395554lt9zxkmf4h.png)
For Hydrogen:
![=2.24 \ g* (1 \ mol )/(1.008 \ g) \\ \\ =2.22 \ mol \ of \ Hydrogen](https://img.qammunity.org/2022/formulas/chemistry/college/9vzcngtz43lklsxthz5w11kczsrjt2faq1.png)
For Oxygen:
![=71.1 \ g* (1 \ mol )/(1.008 \ g) \\ \\ =4.44 \ mol \ of \ oxygen](https://img.qammunity.org/2022/formulas/chemistry/college/os4iyvu9gar8eivwri7mr1v1gbblkbj4zg.png)
Now; we use the smallest no of moles to divide the respective moles from above.
For carbon:
![(2.22 \ mol \ of \ carbon)/(2.22) =1 \ mol \ of \ carbon](https://img.qammunity.org/2022/formulas/chemistry/college/3v81s7y04wh5il0dglily00dh61fvphsux.png)
For Hydrogen:
![(2.22 \ mol \ of \ carbon)/(2.22) =1 \ mol \ of \ hydrogen](https://img.qammunity.org/2022/formulas/chemistry/college/o7n7huzj78526iyn6d828dbesdfl4xs8ii.png)
For Oxygen:
![(4.44 \ mol \ of \ Oxygen)/(2.22) =2 \ mol \ of \ oxygen](https://img.qammunity.org/2022/formulas/chemistry/college/7a8hm858uf0lwi6ymi63lgmtev6ki4zl5d.png)
Thus, the empirical formula is HCO₂