For the reaction `X_(2)O_(4(l)) rarr 2XO_(2(g)), Delta U= 2.1 "kcal", Delta S= 20 "cal " K^(-1)` at 300K, Hence `Delta G` is

For the reaction: X_(2)O_(4)(l)rarr2XO_(2)(g) DeltaU=2.1kcal , DeltaS =20 "cal" K^(-1) "at" 300 K Hence DeltaG is

For the reaction: X_(2)O_(4)(l)rarr2XO_(2)(g) DeltaU=2.1 cal , DeltaS =20 "cal" K^(-1) "at" 300 K Hence DeltaG is

For the reaction, X_(2)O_(4)(l)rarr2XO_(2)(g),DeltaE=2.1Kcal , DeltaS=20cal//K at 300K . Hence DeltaG is

For the reaction, X_(2)O_(4)(l)rarr2XO_(2)(g) , DeltaE=3.1Kcal , DeltaS=30cal//K at 300K . Hence DeltaG is

For the reaction :- N_(2)O_(4(g))hArr2NO_(2(g)) DeltaU=2.0Kcal,DeltaS=50CalK^(-1)at300K calculate DeltaG ?

For the reaction. A(l)rarr 2B(g) DeltaU="2.1 k Cal, "DeltaS="20 Cal K"^(-1)" at 300K Hence DeltaG" in kcal " is ?

For the reaction at 25^(@)C,X_(2)O_(4(l))to2XO_(2(g)),DeltaH=2.1kcal and DeltaS=20" cal "K^(-1) . The reaction would be

Gibbs-Helmoholtz equation relates the free energy change to the enthalpy and entropy changes of the process as (DeltaG)_(PT) = DeltaH - T DeltaS The magnitude of DeltaH does not change much with the change in temperature but the energy factor T DeltaS changes appreciably. Thus, spontaneity of a process depends very much on temperature. For the reaction at 25^(0)C, X_(2)O_(4)(l) rarr 2XO_(2) DeltaH = 2.0 kcal and DeltaS = 20 cal K^(-1) . the reaction would be

For the reaction at 25^(@)C, C_(2)O_(4)(l) rarr 2XO_(2)(g) Delta H =2.1 kcal and DeltaS=20 cal K^(-1) . The reaction would be :

A _ ("(l)") to 2 B _ ( "(g)") Delta U = 2. 1 kcal , Delta S = 20 Cal/k, T = 300 K. Find Delta G ( in kcal )