TY - JOUR
T1 - Correlating DFT-calculated energy barriers to experiments in nonheme octahedral FeIVO species
AU - Cho, Kyung Bin
AU - Kim, Eun Jeong
AU - Seo, Mi Sook
AU - Shaik, Sason
AU - Nam, Wonwoo
PY - 2012/8/13
Y1 - 2012/8/13
N2 - The experimentally measured bimolecular reaction rate constant, k 2, should in principle correlate with the theoretically calculated rate-limiting free energy barrier, ΔG≠, through the Eyring equation, but it fails quite often to do so due to the inability of current computational methods to account in a precise manner for all the factors contributing to ΔG≠. This is further aggravated by the exponential sensitivity of the Eyring equation to these factors. We have taken herein a pragmatic approach for C-H activation reactions of 1,4-cyclohexadiene with a variety of octahedral nonheme FeIVO complexes. The approach consists of empirically determining two constants that would aid in predicting experimental k2 values uniformly from theoretically calculated electronic energy (ΔE≠) values. Shown in this study is the predictive power as well as insights into energy relationships in Fe IVO C-H activation reactions. We also find that the difference between ΔG≠ and ΔE≠ converges at slow reactions, in a manner suggestive of changes in the importance of the triplet spin state weight in the overall reaction. Useful correlations: Seven different synthetic nonheme FeIVO species were investigated with both theoretical and experimental methods in order to obtain a statistical base from which useful predictions and insights can be made (see figure).
AB - The experimentally measured bimolecular reaction rate constant, k 2, should in principle correlate with the theoretically calculated rate-limiting free energy barrier, ΔG≠, through the Eyring equation, but it fails quite often to do so due to the inability of current computational methods to account in a precise manner for all the factors contributing to ΔG≠. This is further aggravated by the exponential sensitivity of the Eyring equation to these factors. We have taken herein a pragmatic approach for C-H activation reactions of 1,4-cyclohexadiene with a variety of octahedral nonheme FeIVO complexes. The approach consists of empirically determining two constants that would aid in predicting experimental k2 values uniformly from theoretically calculated electronic energy (ΔE≠) values. Shown in this study is the predictive power as well as insights into energy relationships in Fe IVO C-H activation reactions. We also find that the difference between ΔG≠ and ΔE≠ converges at slow reactions, in a manner suggestive of changes in the importance of the triplet spin state weight in the overall reaction. Useful correlations: Seven different synthetic nonheme FeIVO species were investigated with both theoretical and experimental methods in order to obtain a statistical base from which useful predictions and insights can be made (see figure).
KW - C-H activation
KW - density functional calculations
KW - kinetics
KW - nonheme iron-oxo species
KW - reaction rate
UR - http://www.scopus.com/inward/record.url?scp=84864587790&partnerID=8YFLogxK
U2 - 10.1002/chem.201200096
DO - 10.1002/chem.201200096
M3 - ???researchoutput.researchoutputtypes.contributiontojournal.article???
C2 - 22714711
AN - SCOPUS:84864587790
SN - 0947-6539
VL - 18
SP - 10444
EP - 10453
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 33
ER -