Q10.80CP

Question

A gaseous compound has a composition by mass of 24.8% carbon, 2.08% hydrogen, and 73.1% chlorine. At STP, the gas has a density of 4.3 g/L. Draw a Lewis structure that satisfies these facts. Would another structure also satisfy them? Explain

Step-by-Step Solution

Verified
Answer

The required compound is  C1H1Cl1

1Step 1: Empirical formula

Atom

Mass present in the compound

Moles present in the compound

Ratio

Hydrogen

2..08

2.081=2.08 

2.082.06=1 

Carbon

24.8

 24.812=2.06

2.062.06=1 

Chlorine

73.1

73.135.5=2.06 

2.062.06=1 


The empirical formula of the compound is C1H1Cl1.

2Step 2: Formula of the compound

The molar mass of the compound is calculated as below.

M=4.3g/L*0.0821 L atm/molK*273K1 atm 

Now. 

 n=molar massempirical mass of compound

 n=96.3848.5=2

Therefore, the possible formula of the compound is C2H2Cl2. This is dichloroethane.

3Step 3: Possible structures


Three possible structures are drawn. The three are isomers of each other.