Wang Tianyu, Jiang Hui, Jin Cheng, Zou Xiao, Zhu Pengfei, Jiang Tao, He Feng, Xiang Dao
Key Laboratory for Laser Plasmas (Ministry of Education) and School of Physics and Astronomy, Collaborative Innovation Center for IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China.
Zhangjiang Institute for Advanced Study, Shanghai Jiao Tong University, Shanghai 201210, China.
J Chem Phys. 2025 May 14;162(18). doi: 10.1063/5.0267186.
We study the photoinduced chemical dynamics of cyclobutanone upon excitation at 200 nm to the 3s Rydberg state using MeV ultrafast electron diffraction (UED). We observe both the elastic scattering signal, which contains information about the structural dynamics, and the inelastic scattering signal, which encodes information about the electronic state. Our results suggest a sub-picosecond timescale for the photodissociation dynamics and an excited state lifetime of about 230 femtoseconds. The dissociation is found to be dominated by the C3 channel, where cyclopropane and CO are produced. The branching ratio of the C3 channel to the C2 channel, where ethene and ketene are produced, is estimated to be ∼5:3. Our data suggest that the C3 and C2 channels account for ∼80% of the photoproducts, with the remaining 20% exhibiting ring-opened structures. It is found that the timescale associated with the dissociation process in the C2 channel is shorter compared to that in the C3 channel. Leveraging the enhanced temporal resolution of MeV UED, our results provide a real-time mapping of the nuclear wave packet dynamics, capturing the complete photochemical dynamics from S2 minimum through the S1/S0 conical intersection and finally to the dissociation. Our experimental results provide new insights into the Norrish type I reaction and can be used to benchmark non-adiabatic dynamics simulations.
我们使用兆电子伏特超快电子衍射(UED)研究了环丁酮在200纳米激发至3s里德堡态时的光致化学动力学。我们观察到了包含结构动力学信息的弹性散射信号以及编码电子态信息的非弹性散射信号。我们的结果表明光解离动力学的时间尺度在亚皮秒范围内,激发态寿命约为230飞秒。发现解离主要由C3通道主导,该通道产生环丙烷和一氧化碳。C3通道与产生乙烯和乙烯酮的C2通道的分支比估计约为5:3。我们的数据表明C3和C2通道占光产物的约80%,其余20%呈现开环结构。发现与C2通道中的解离过程相关的时间尺度比C3通道中的短。利用兆电子伏特UED增强的时间分辨率,我们的结果提供了核波包动力学的实时映射,捕捉了从S2最低点通过S1/S0锥形交叉点直至解离的完整光化学动力学。我们的实验结果为Norrish I型反应提供了新的见解,并可用于对非绝热动力学模拟进行基准测试。