College of Smart Energy, Shanghai Jiao Tong University, Shanghai 200240, PR China.
Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.
Environ Sci Technol. 2024 Jul 2;58(26):11587-11595. doi: 10.1021/acs.est.4c02590. Epub 2024 Jun 20.
Organic molecules in the environment oxidatively degrade by a variety of free radical, microbial, and biogeochemical pathways. A significant pathway is heterogeneous autoxidation, in which degradation occurs via a network of carbon and oxygen centered free radicals. Recently, we found evidence for a new heterogeneous autoxidation mechanism of squalene that is initiated by hydroxyl (OH) radical addition to a carbon-carbon double bond and apparently propagated through pathways involving Criegee Intermediates (CI) produced from β-hydroxy peroxy radicals (β-OH-RO•). It remains unclear, however, exactly how CI are formed from β-OH-RO•, which could occur by a unimolecular or bimolecular pathway. Combining kinetic models and multiphase OH oxidation measurements of squalene, we evaluate the kinetic viability of three mechanistic scenarios. Scenario 1 assumes that CI are formed by the unimolecular bond scission of β-OH-RO•, whereas Scenarios 2 and 3 test bimolecular pathways of β-OH-RO• to yield CI. Scenario 1 best replicates the entire experimental data set, which includes effective uptake coefficients vs [OH] as well as the formation kinetics of the major products (i.e., aldehydes and secondary ozonides). Although the unimolecular pathway appears to be kinetically viable, future high-level theory is needed to fully explain the mechanistic relationship between CI and β-OH-RO• in the condensed phase.
环境中的有机分子通过各种自由基、微生物和生物地球化学途径发生氧化降解。一个重要途径是多相自氧化,其中通过碳和氧中心自由基的网络发生降解。最近,我们发现角鲨烯的一种新的多相自氧化机制的证据,该机制由羟基(OH)自由基加成到碳-碳双键引发,显然通过涉及由β-羟基过氧自由基(β-OH-RO•)产生的 Criegee 中间体(CI)的途径传播。然而,CI 如何由β-OH-RO•形成仍然不清楚,这可能通过单分子或双分子途径发生。通过结合动力学模型和角鲨烯的多相 OH 氧化测量,我们评估了三种机制情景的动力学可行性。情景 1假设 CI 通过β-OH-RO•的单分子键断裂形成,而情景 2和 3则测试了β-OH-RO•生成 CI 的双分子途径。情景 1最好复制了整个实验数据集,包括有效吸收系数与[OH]的关系以及主要产物(即醛和次级臭氧化物)的形成动力学。尽管单分子途径在动力学上似乎是可行的,但未来需要高级理论来充分解释 CI 和β-OH-RO•在凝聚相中的机制关系。