Problem 2
Kinetic isotope effect (KIE) and zero-point vibrational energy (ZPE). The harmonic oscillator model gives the vibrational frequency , where is the force constant and is the reduced mass. Vibrational energies are (), and the zero-point energy is . (a) Calculate the reduced masses and in atomic mass units (u), taking u, u, and u. (b) Given and the stretching wavenumber , calculate the stretching wavenumber (cm). (c) Calculate and in kJ mol. (d) Calculate the difference in bond dissociation energies (kJ mol). (e) Assuming and identical Arrhenius pre-exponential factors, calculate the theoretical primary KIE at . (f) In the chromic acid oxidation of diphenylmethanol, measured first-order rate constants are and . Compare this experimental ratio with the theoretical value and determine whether bond cleavage is rate-determining.
Step 6 of 6: Experimental comparison and mechanistic conclusion
Analysis
The measured ratio is in excellent agreement with the theoretical primary KIE (6.5). If cleavage occurred after the rate-determining step, a secondary KIE close to 1 would be observed; therefore, the bond-breaking step is indeed the rate-determining step.
Common pitfall. Do not confuse primary KIE (cleavage of the bond directly involved in the reaction, ratio 6–8) with secondary KIE (isotopic substitution on an adjacent atom, ratio usually 0.8–1.4).