A reaction has a standard free-energy change of -15.50 kJ mol^-1 (-3.705 kcal mol^-1). how is the equilibrium constant calculated when the reaction is at 25 degrees celsius?

1 Answer
Michael
Mar 20, 2018

It is done like this:

Explanation:

You use the expression:

#sf(DeltaG^@=-RTlnK_(eq))#

#sf(T=25^@C=298K)#

#sf(R=8.31color(white)(x)"J/K/mol")#

#sf(lnK_(eq)=-(DeltaG^@)/(RT))#

#sf(lnK_(eq)=-(-15.50xx10^3)/(8.31xx298))#

#sf(lnK_(eq)=6.259)#

For which:

#sf(K_(eq)=522.8)#

(kcal is an obsolete unit)

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