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Question 7
Phosphorus(V) chloride decomposes into phosphorus(III) chloride and chlorine at a temperature of 500 K according to the following balanced equation. $$\text{PCl}_5 ... show full transcript
Step 1
Answer
A reversible reaction is one where products can react to form the original reactants, allowing the reaction to proceed in both directions. An equilibrium reaction achieves a state where the rates of the forward and reverse reactions are equal, creating a balanced system. The term 'dynamic' indicates that while the concentrations of reactants and products remain constant, the reactions of formation and decomposition continue to occur simultaneously, meaning that the system has not completely ceased.
Step 2
Step 3
Step 4
Answer
First, we need to convert the mass of PCl5 to moles:
The moles of Cl2 can be calculated from its given mass:
At equilibrium, assuming x moles of PCl3 is formed and using stoichiometry:
Plugging in the values yields:
Step 5
Answer
The reaction is endothermic. According to Le Chatelier's principle, when the temperature of the reaction system is increased, the equilibrium will shift to favor the endothermic direction to absorb some of that added heat. Since the decomposition of PCl5 into PCl3 and Cl2 requires energy, the reaction absorbs heat, indicating it is endothermic.
Step 6
Answer
The value of will not change with a change in pressure, as is a constant at a given temperature. However, increasing pressure generally shifts the equilibrium towards the side with fewer gas moles. In this case, since there are 2 moles of products (1 PCl3 + 1 Cl2) and 1 mole of reactant (PCl5), the shift, if any, would favor the PCl5 formation but does not affect the numerical value of itself.
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