Institute of Physics, Bijenička cesta 46, 10 000 Zagreb, Croatia.
Department of Organic Chemistry and Biochemistry, Ruđer Bošković Institute, Bijenička cesta 54, 10 000 Zagreb, Croatia.
Phys Chem Chem Phys. 2022 Feb 16;24(7):4384-4393. doi: 10.1039/d1cp05690e.
The ultrafast photochemical reaction of quinone methide (QM) formation from adamantylphenol was monitored in real time using femtosecond transient absorption spectroscopy and fluorescence upconversion in solution at room temperature. Experiments were complemented by theoretical studies simulating the reaction pathway and elucidating its mechanism. Excitation with sub-20 fs UV pulses and broadband probing revealed ultrafast formation of the long-lived QM intermediate directly in the ground state, occurring with a time constant of around 100 fs. UV-vis transient absorption data covering temporal dynamics from femtoseconds to hundreds of milliseconds revealed persistence of the absorption band assigned to QM and partially overlapped with other contributions tentatively assigned to triplet excited states of the adamantyl derivative and the phenoxyl radical that are clearly distinguished by their evolution on different time scales. Our data, together with the computations, provide evidence of a non-adiabatic photodehydration reaction, which leads to the formation of QM in the ground state a conical intersection, circumventing the generation of a transient QM excited state.
使用飞秒瞬态吸收光谱法和室温下溶液中的荧光上转换,实时监测了金刚烷苯酚中醌甲醚 (QM) 形成的超快光化学反应。实验通过模拟反应途径和阐明其机制的理论研究得到了补充。用亚 20 fs 的紫外脉冲进行激发,并进行宽带探测,揭示了在基态中直接超快形成长寿命 QM 中间体,其时间常数约为 100 fs。涵盖从飞秒到数百毫秒时间动力学的紫外可见瞬态吸收数据显示,QM 的吸收带持续存在,部分与其他贡献重叠,这些贡献暂时归因于金刚烷衍生物和苯氧自由基的三重态激发态,它们通过不同的时间尺度上的演变来清楚地区分。我们的数据以及计算结果提供了非绝热光脱水反应的证据,该反应导致 QM 在基态下形成,即通过锥形交叉点,绕过了瞬态 QM 激发态的生成。