The equilibrium constant for a reaction `A+B hArr C+D` is `1xx10^(-2)` at `298 K` and is `2` at `273 K`. The chemical process resulting in the formation of `C` and `D` is

The equilibrium constant for a reaction A+B hArr C+D is 1.0xx10^(-2) at 298 and is 2.0 at 373 K . The chemical process resulting in the foemation of C and D is

The equilibrium constant (K) for the reaction. A+2BhArr2C+D is:

The unit of equilibrium constant K_(c) for the reaction A+B hArr C would be

The equilibrium constant for the reaction, A+B hArr C+D is 2.85 at room temperature and 1.4xx10^(-2) at 698 K . This shows that the forward reaction is

The equilibrium constant of a reaction at 298 K is 5 xx 10^(-3) and at 1000 K is 2 xx 10^(-5) What is the sign of triangleH for the reaction.

The equilibrium constant for a reaction A+2B hArr 2C is 40 . The equilibrium constant for reaction C hArr B+1//2 A is

The equilibrium constants for the reaction, A_2hArr2A A at 500K and 700K are 1xx10^(-10) and 1xx10^(-5) . The given reaction is

The equilibrium constant K_c at 298 K for the reaction A + B = C + D is 100. Starting with an equimolar solution with concentrations of A, B, C and D all equal to 1 M, the equilibrium concentration of D is xx 10^(-2) M. (Nearest integer)