Mechanistic Photodissociation of Glycolaldehyde: Insights from Ab Initio and RRKM Calculations |
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Authors: | Dr. Ganglong Cui Prof. Dr. Weihai Fang |
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Affiliation: | Chemistry College, Beijing Normal University, Beijing 100875 (China), Fax: (+86)?10‐5880‐5382 |
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Abstract: | Herein we report a theoretical study on mechanistic photodissociation of glycolaldehyde, HOCH2CHO. Equilibrium structures, transition states, and intersection structures for the α‐C? C and ‐C? H bond fissions and the β‐C? O bond fission in the excited states are determined by the complete active space self‐consistent field (CASSCF) method. Based on the CASSCF optimized structures, the potential energy profiles for the dissociations are refined by performing single‐point calculations using the multi‐state multi‐reference CASSCF second order perturbation (MS‐MR‐CASPT2) method. With a low excitation energy of 280–340 nm, the T1 α‐C? C and β‐C? O bond fissions following intersystem crossing from the S1 state are the predominant and comparable channels, whereas the α‐C? H bond fissions both in the S1 and in the T1 states are nearly prohibited due to the relevant high barriers. The rate constants for the T1 α‐C? C and β‐C? O bond fissions are also calculated by RRKM theory. Furthermore, the S0 reactions can occur as a consequence of intersystem crossing via T1/S0 intersection points resulting from the T1 C? C and C? O bond cleavages. This photodissociation mechanism is consistent with recent experimental studies. |
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Keywords: | computational chemistry conical intersections photochemistry photolysis transition states |
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