Cui Jing, Niu Kai-Kai, Zhang Rong-Zhen, Liu Hui, Yu Shengsheng, Xing Ling-Bao
School of Chemistry and Chemical Engineering, Shandong University of Technology, Zibo 255000, P. R. China.
Chem Commun (Camb). 2024 Apr 16;60(32):4310-4313. doi: 10.1039/d4cc00915k.
Benzaldehydes are indispensable building blocks in chemistry. However, the selective oxidation of toluene to benzaldehyde remains an ongoing challenge due to the low oxidation potential of benzaldehyde compared to toluene. We report herein a mild protocol that combines hydrogen atom transfer (HAT) with encapsulated air conditions and suitable catalyst loading for selective oxidation of toluene with high selectivity as well as good functional-group tolerance and a broad substrate scope for the synthesis of various high-value aromatic aldehydes. Moreover, the compatibility of this reaction with toluene derivatives of bioactive molecules further demonstrated the practicality of this approach. Mechanism studies have demonstrated that the collaboration between the oxygen quantity and the HAT catalytic system has a major impact on the high selectivity of the reaction. This study not only showcases the effectiveness of HAT strategies toward selective oxidation of toluene to benzaldehyde, but also provides an approach to controlling the selectivity of HAT reactions.
苯甲醛是化学中不可或缺的结构单元。然而,由于苯甲醛相对于甲苯的氧化电位较低,将甲苯选择性氧化为苯甲醛仍然是一个持续存在的挑战。我们在此报告一种温和的方法,该方法将氢原子转移(HAT)与封装空气条件以及合适的催化剂负载量相结合,用于甲苯的选择性氧化,具有高选择性、良好的官能团耐受性和广泛的底物范围,可用于合成各种高价值的芳香醛。此外,该反应与生物活性分子的甲苯衍生物的兼容性进一步证明了该方法的实用性。机理研究表明,氧量与HAT催化体系之间的协同作用对反应的高选择性有重大影响。这项研究不仅展示了HAT策略对甲苯选择性氧化为苯甲醛的有效性,还提供了一种控制HAT反应选择性的方法。