Imaging CF3I conical intersection and photodissociation dynamics with ultrafast electron diffraction.
Jie YangXiao-Lei ZhuThomas J A WolfZheng LiJoao Pedro Figueira NunesRyan N CoffeeJames P CryanMarkus GührKareem HegazyTony F HeinzKeith JobeRenkai LiXiaozhe ShenTheodore VeccioneStephen WeathersbyKyle J WilkinCharles YonedaQiang ZhengTodd J MartinezMartin CenturionXijie WangPublished in: Science (New York, N.Y.) (2018)
Conical intersections play a critical role in excited-state dynamics of polyatomic molecules because they govern the reaction pathways of many nonadiabatic processes. However, ultrafast probes have lacked sufficient spatial resolution to image wave-packet trajectories through these intersections directly. Here, we present the simultaneous experimental characterization of one-photon and two-photon excitation channels in isolated CF3I molecules using ultrafast gas-phase electron diffraction. In the two-photon channel, we have mapped out the real-space trajectories of a coherent nuclear wave packet, which bifurcates onto two potential energy surfaces when passing through a conical intersection. In the one-photon channel, we have resolved excitation of both the umbrella and the breathing vibrational modes in the CF3 fragment in multiple nuclear dimensions. These findings benchmark and validate ab initio nonadiabatic dynamics calculations.
Keyphrases
- energy transfer
- living cells
- cystic fibrosis
- molecular dynamics
- electron transfer
- monte carlo
- density functional theory
- single molecule
- fluorescent probe
- depressive symptoms
- electron microscopy
- quantum dots
- molecular dynamics simulations
- high resolution
- small molecule
- pseudomonas aeruginosa
- deep learning
- fluorescence imaging
- risk assessment
- randomized controlled trial
- solar cells
- staphylococcus aureus
- mass spectrometry