The equilibrium constant for the reaction H 2( g )+ S ( g ) leftharpoons H 2 S ( g ) is 18.5 at 925 and 9.25 at 1000 respectively. What is the enthalpy of the reaction?

Question

The equilibrium constant for the reaction H 2( g )+ S ( g ) leftharpoons H 2 S ( g ) is 18.5 at 925 and 9.25 at 1000 respectively. What is the enthalpy of the reaction? (A) -142.16 kJ/mole (B) -71.08 kJ/mole (C) -35.54 kJ/mole (D) none of these

Tardigrade Admin · Accepted Answer

log ( K 2/ K 1)= (Δ H /2.303 R ) ⋅ ([ T 2- T 1]/ T 1 T 2) log (9.25/18.5) =(Δ H /2.303 × 8.314) × (75/925 × 1000) -0.0310 =(Δ H × 75/2.303 × 8.314 × 925 × 1000) Δ H =-71080.57 J / mole = -71.08 kJ/mole

Q. The equilibrium constant for the reaction H2​(g)+S(g)⇌H2​S(g) is 18.5 at 925 and 9.25 at 1000 respectively. What is the enthalpy of the reaction?

-142.16 kJ/mole

-71.08 kJ/mole

-35.54 kJ/mole

none of these

logK1​K2​​=2.303RΔH​⋅T1​T2​[T2​−T1​]​ log18.59.25​=2.303×8.314ΔH​×925×100075​ −0.0310=2.303×8.314×925×1000ΔH×75​ ΔH=−71080.57J/mole =−71.08 kJ/mole

Q. The equilibrium constant for the reaction
$H_{2} (g) + S (g) ⇌ H_{2} S (g)$
is $18.5$ at $925$ and $9.25$ at $1000$ respectively. What is the enthalpy of the reaction?