The empirical formula of the tin-fluorine compound is .
Further explanation:
Empirical formula:
It is atom’s simplest positive integer ratio in the compound. It may or may not be same as that of molecular formula. For example, empirical formula of sulfur dioxide is .
Step 1: Mass of fluorine in tin-fluorine compound is to be calculated. This is done by using equation (1).
Since the compound consists of only tin (Sn) and fluorine (F). So the mass of fluorine is calculated as follows:
…… (1)
The mass of the compound is 8.65 g.
The mass of Sn is 5.28 g.
Substitute these values in equation (1).
Step 2: The moles of tin and fluorine are to be calculated.
The formula to calculate the moles of a substance is as follows:
…… (2)
Substitute 5.28 g for given mass and 118.71 g/mol for molar mass in equation (2) to calculate the moles of Sn.
Substitute 3.37 g for given mass and 18.99 g/mol for molar mass in equation (2) to calculate the moles of F.
Step 4: The preliminary formula of tin-fluorine compound is to be formed.
The moles of tin and fluorine are to be written with their corresponding subscripts in nitrogen oxide. So the preliminary formula becomes,
Step 5: The empirical formula of tin-fluorine compound is to be formed.
Each of the subscripts is divided by the smallest subscript to get the empirical formula. In this case, the smallest one is 0.0444. So the empirical formula of the compound is written as follows:
So the empirical formula of the compound comes out to be .
Learn more:
1. Calculate the moles of ions in the solution: brainly.com/question/5950133
2. Calculate the moles of chlorine in 8 moles of carbon tetrachloride: brainly.com/question/3064603
Answer details:
Grade: Senior School
Subject: Chemistry
Chapter: Stoichiometry of formulas and equations
Keywords: empirical formula, Sn, F, SnF4, tin, fluorine, compound, subscript, moles of tin, moles of oxygen, mass of fluorine, mass of tin, moles of fluorine, preliminary formula.