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please help In the gas phase, acetic acid exists as an equilibrium of monomer and dimer molecules. (The dimer consists of two molecules linked through
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In the gas phase, acetic acid exists as an equilibrium of monomer and dimer molecules. (The dimer consists of two molecules linked through hydrogen bonds.) The equilibrium constant, Kc, at 25C for the monomer-dimer equilibrium 2CH3CO2H(CH3CO2H)2 has been determined to be 3.2104. Assume that acetic acid is present initially at a concentration of 4.6104mol/L at 25C and that no dimer is present initially. a What percentage of the acetic acid is converted to dimer? Percentage =% b. As the temperature increases, in which direction does the equilibrium shift? (Recall that hydrogen-bond formation is an exothermic process.) Increasing the temperature will shift the equilibrium to the left. Increasing the temperature will shift the equilibrium to the right. No shift will occur Step by Step Solution
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