Intramolecular H−Migration Kinetics of •OOQOOH Radicals for KHP Formation During Low-Temperature Oxidation of Alkylcyclohexanes
Abstract
1. Introduction
2. Discussion
2.1. Potential Energy Surfaces
2.2. Energy Barriers for Subclasses
2.3. High−Pressure−Limit Rate Constants and Rate Rules
3. Methods
4. Conclusions
- (1)
- High−pressure−limit rate constants of 13 representative intramolecular H−migration pathways of •OOQOOH are obtained. These reactions are categorized into six subclasses according to the ring size of the cyclic transition state, the carbon type bearing the –OO moiety, and the carbon type donating the migrating hydrogen. Modified Arrhenius parameters for individual reactions and subclass-averaged rate rules are fitted. This structural classification strategy groups analogous H−migration reactions and provides a basis for developing rate rules in automated mechanism generation.
- (2)
- The cyclohexane ring exerts competing effects on the activation barriers compared with acyclic alkane analogs. The cyclic framework restricts alkyl chain rotation and promotes conformational preorganization, which lowers the barriers for most H−migration pathways. However, for 1,5-H−migration reactions involving ring-attached tertiary peroxyl radicals, steric and torsional strain introduced by geometric confinement destabilizes the transition states and leads to higher barriers than the corresponding acyclic reactions. Such barrier inversion is not observed for the investigated 1,6 H−migration pathways, likely due to the greater spatial flexibility of the seven-membered transition states.
- (3)
- Comparison with kinetic parameters adopted in existing alkylcyclohexane mechanisms shows that rate constants estimated from linear alkane analogs are consistently lower than the present calculated values over the investigated temperature range. The differences originate from the combined effects of conformational preorganization and steric constraints imposed by the cyclohexane ring. Therefore, direct transfer of kinetic parameters from acyclic systems may introduce significant uncertainties into low-temperature oxidation models of alkylcyclohexanes.
- (4)
- Unlike previous mechanisms that relied mainly on analogy-based estimation, this work addresses the lack of dedicated kinetic data for •OOQOOH H−migration reactions in alkylcyclohexanes by providing ring-structure-specific quantum chemical calculations. The resulting kinetic parameters offer a more reliable basis for refining low-temperature oxidation mechanisms of cyclohexane fuels and reducing uncertainties associated with analogy-based rate estimation. Future work will focus on expanding the reaction dataset within each subclass and performing ignition simulations to further evaluate the impact of the revised kinetic parameters.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Molecular System | Conformational No. | Spatial Orientation of Substituent | Electronic Energy |
|---|---|---|---|
| Methylcyclohexane | MCH a-e c | ![]() | −720,914.5 |
| Methylcyclohexane | MCH-a d | ![]() | −720,906.5 |
| Ethylcyclohexane | ECH b-e | ![]() | −823,899.9 |
| Ethylcyclohexane | ECH-a | ![]() | −823,891.9 |
| No. | Reactions | Activation Enthalpy, |
|---|---|---|
| R1 | ![]() | 70.4 |
| R2 | ![]() | 78.5 |
| 1,5 a-H-(s) b(p) c | (74.5 d, 8.1 e) | |
| R3 | ![]() | 68.2 |
| R4 | ![]() | 63.1 |
| R5 | ![]() | 66.1 |
| R6 | ![]() | 68.0 |
| R7 | ![]() | 70.0 |
| R8 | ![]() | 70.1 |
| 1,5-H-(s)(s) | (67.6, 7.0) | |
| R9 | ![]() | 82.4 |
| 1,5-H-(t)(p) | (82.4, 0) | |
| R10 | ![]() | 71.9 |
| R11 | ![]() | 71.7 |
| 1,5-H-(t)(s) | (71.8, 0.2) | |
| R12 | ![]() | 63.0 |
| 1,6-H-(t)(p) | (63.0, 0) | |
| R13 | ![]() | 61.9 |
| 1,6-H-(t)(s) | (61.9, 0) |
| Alkyl Cyclohexane Reactions | Alkane Reactions | |||
|---|---|---|---|---|
| 1,5-H-(s)(p) | ![]() | 70.4 | ![]() | 81.1 |
![]() | 78.5 | ![]() | 81.6 | |
| 1,5-H-(s)(s) | ![]() | 68.2 | ![]() | 73.7 |
![]() | 63.1 | ![]() | 74.3 | |
![]() | 66.1 | ![]() | 81.1 | |
![]() | 68.0 | ![]() | 75.2 | |
![]() | 70.0 | ![]() | 81.6 | |
![]() | 70.1 | ![]() | 74.5 | |
| 1,5-H-(t)(p) | ![]() | 82.4 | ![]() | 70.6 |
| 1,5-H-(t)(s) | ![]() | 71.9 | ![]() | 68.3 |
![]() | 71.7 | ![]() | 75.8 | |
| 1,6-H-(t)(p) | ![]() | 63.0 | ![]() | 73.0 |
| 1,6-H-(t)(s) | ![]() | 61.9 | ![]() | 62.2 |
| Modified Arrhenius Parameters | |||
|---|---|---|---|
| Reaction | A (s−1) | n | E (cal mol−1) |
| R1 | 2.66 × 106 | 1.8 | 13,380.1 |
| R2 | 2.43 × 106 | 1.6 | 15,596.4 |
| 1,5-H-(s)(p) | 2.32 × 107 | 1.6 | 15,630.1 |
| R3 | 1.29 × 108 | 1.2 | 13,810.3 |
| R4 | 6.33 × 106 | 1.6 | 12,001.2 |
| R5 | 1.10 × 106 | 2.0 | 13,839.7 |
| R6 | 1.96 × 108 | 1.2 | 13,815.8 |
| R7 | 5.27 × 106 | 1.7 | 13,579.3 |
| R8 | 1.91 × 107 | 1.2 | 13,232.4 |
| 1,5-H-(s)(s) | 1.44 × 106 | 1.8 | 12,751.4 |
| R9 | 4.56 × 106 | 1.8 | 16,275.9 |
| 1,5-H-(t)(p) | 4.56 × 106 | 1.8 | 16,275.9 |
| R10 | 3.48 × 107 | 1.6 | 14,134.9 |
| R11 | 4.03 × 108 | 0.9 | 14,296.3 |
| 1,5-H-(t)(s) | 3.18 × 107 | 1.5 | 14,126.4 |
| R12 | 1.65 × 107 | 1.2 | 12,214.7 |
| 1,6-H-(t)(p) | 1.65 × 107 | 1.2 | 12,214.7 |
| R13 | 3.19 × 107 | 1.1 | 12,055.9 |
| 1,6-H-(t)(s) | 3.19 × 107 | 1.1 | 12,055.9 |
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Yao, X.; Liu, Y.; Xuan, Y.; Guo, J.; Liu, M.; Li, Z.; Hai, W. Intramolecular H−Migration Kinetics of •OOQOOH Radicals for KHP Formation During Low-Temperature Oxidation of Alkylcyclohexanes. Molecules 2026, 31, 3299. https://doi.org/10.3390/molecules31183299
Yao X, Liu Y, Xuan Y, Guo J, Liu M, Li Z, Hai W. Intramolecular H−Migration Kinetics of •OOQOOH Radicals for KHP Formation During Low-Temperature Oxidation of Alkylcyclohexanes. Molecules. 2026; 31(18):3299. https://doi.org/10.3390/molecules31183299
Chicago/Turabian StyleYao, Xiaoxia, Yuheng Liu, Ying Xuan, Junjiang Guo, Mingxia Liu, Zerong Li, and Wenjiong Hai. 2026. "Intramolecular H−Migration Kinetics of •OOQOOH Radicals for KHP Formation During Low-Temperature Oxidation of Alkylcyclohexanes" Molecules 31, no. 18: 3299. https://doi.org/10.3390/molecules31183299
APA StyleYao, X., Liu, Y., Xuan, Y., Guo, J., Liu, M., Li, Z., & Hai, W. (2026). Intramolecular H−Migration Kinetics of •OOQOOH Radicals for KHP Formation During Low-Temperature Oxidation of Alkylcyclohexanes. Molecules, 31(18), 3299. https://doi.org/10.3390/molecules31183299











































