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Find Δ³§ofor the combustion of ethane(C2H6)to carbon dioxide and gaseous water. Is the sign ofΔ³§oas expected?

Short Answer

Expert verified

The combustion of ethane to carbon dioxide and gaseous water is obtained as: Δ³§âˆ˜=94.4J/K.

Step by step solution

01

Define Thermodynamics .

Thermodynamics is the study of the connections between heat, work, temperature, and energy. Thermodynamic principles specify how energy develops within a system and whether it is capable of having a positive impact on its surroundings.

02

Evaluating the ΔSo.

First, write theC2H6combustion reaction and balance the equation.

2C2H6g+7O2g→4CO2g+6H2Og

After that, make a list of the Sovalues for each compound.

S°O2g=205.0J/molKS°C2H6g=229.5J/molKS°H2Og=188.72J/molKS°CO2g=213.7J/molK

Solve for the Δ³§onow as:

Δ³§âˆ˜=∑npS∘(product)-∑nrS∘(reactant).....................(1)=nS∘CO2(g)+nS∘H2O(g)-nS∘C2H6(g)+nS∘O2(g)....................(2)=((213.7)+6(188.75)]-[2(229.5)+7(205.0)])J/mol×K.....................(3)=94.4J/mol×K............................(4)

The omen is favourable. All of the chemical species found are gaseous compounds. The total number of moles on the product side is more than the total number of moles on the reactant side, as:Δ²Ô=+1. As a result, having more gaseous molecules means having greater unpredictability and higher entropy.

Therefore, the value is: Δ³§âˆ˜=94.4J/K.

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