3. The standard free energy change at room temperature may be calculated as   A, ΔG°=∑νΔG°(products)−∑νΔG°(reactants)   B, ΔG°=∑νΔG°(reactants)−∑νΔG°(products)   C, ΔG°=∑νΔG°(products)+∑νΔG°(reactants)   D, ΔG°=∑ΔG°(products)−∑ΔG°(reactants)   4.Which statement is true concerning the standard states of Cl2(g), K(s) and KCl(aq)?                  A, The standard state for Cl2(g) is the pure gas at 1 atm,  for K(s) is the pure solid at 1 atm, and for KCl(aq) is the solution at a concentration of 1 mol/L.    B, The standard state for Cl2(g) is the pure gas at a concentration of 1 mol/L,  for K(s) is the pure solid at 1 atm, and for KCl(aq) is the solution at 1 atm.   C, The standard state for Cl2(g) is the pure gas at 1 atm,  for K(s) is the pure solid at a concentration of 1 mol/L at 1 atm, and for KCl(aq) is the solution at a concentration of 1 mol/L.    D, The standard state for Cl2(g) is the pure gas,  for K(s) is the pure solid, and for KCl(aq) is the solution.

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3. The standard free energy change at room temperature may be calculated as

 
A, ΔG°=∑νΔG°(products)−∑νΔG°(reactants)
 
B, ΔG°=∑νΔG°(reactants)−∑νΔG°(products)
 
C, ΔG°=∑νΔG°(products)+∑νΔG°(reactants)
 
D, ΔG°=∑ΔG°(products)−∑ΔG°(reactants)
 
4.Which statement is true concerning the standard states of Cl2(g), K(s) and KCl(aq)?               
 
A, The standard state for Cl2(g) is the pure gas at 1 atm,  for K(s) is the pure solid at 1 atm, and for KCl(aq) is the solution at a concentration of 1 mol/L. 
 
B, The standard state for Cl2(g) is the pure gas at a concentration of 1 mol/L,  for K(s) is the pure solid at 1 atm, and for KCl(aq) is the solution at 1 atm.
 
C, The standard state for Cl2(g) is the pure gas at 1 atm,  for K(s) is the pure solid at a concentration of 1 mol/L at 1 atm, and for KCl(aq) is the solution at a concentration of 1 mol/L. 
 
D, The standard state for Cl2(g) is the pure gas,  for K(s) is the pure solid, and for KCl(aq) is the solution. 
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