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Updated: Feb 8, 2026

Blood Flow Imaging with Ultrafast Doppler
Published on: October 14, 2020
Jie Yang1,2, Xiaolei Zhu2,3, Thomas J A Wolf2
1SLAC National Accelerator Laboratory, Menlo Park, CA, USA. jieyang@slac.stanford.edu todd.martinez@stanford.edu martin.centurion@unl.edu wangxj@slac.stanford.edu.
Ultrafast electron diffraction imaged molecular wave packets at conical intersections. This study observed nuclear wave packet bifurcation and vibrational modes in CF3I, validating theoretical calculations.
Area of Science:
Background:
Nonadiabatic transitions occurring at Conical Intersections (CIs) represent the primary mechanism for ultrafast energy dissipation in polyatomic molecular systems following electronic excitation. Prior research has shown that these points of electronic state degeneracy act as efficient funnels, directing the flow of nuclear wave packets between different Potential Energy Surfaces (PESs). While femtosecond spectroscopy has provided invaluable insights into the temporal aspects of these transitions, the lack of direct spatial information has hindered a complete understanding of the underlying nuclear motion. Scientists have long sought to visualize how the molecular geometry of Trifluoroiodomethane (CF3I) changes as a system traverses these pivotal regions of the energy landscape. The challenge lies in achieving sub-angstrom spatial resolution simultaneously with femtosecond temporal resolution to capture the fleeting nature of the wave-packet bifurcation. This absence of evidence motivated the application of ultrafast gas-phase electron diffraction to directly image the structural evolution of molecules undergoing nonadiabatic processes.
Purpose Of The Study:
Researchers characterized the complex photodissociation dynamics of isolated Trifluoroiodomethane (CF3I) molecules using high-resolution electron scattering techniques to overcome previous spatial limitations. This investigation focused on mapping the real-space trajectories of coherent nuclear wave packets as they navigate the intricate potential energy surfaces associated with excited electronic states. By distinguishing between one-photon and two-photon excitation channels, the team provided a comprehensive picture of how different energy inputs influence the resulting molecular fragmentation. A central goal involved the direct observation of wave-packet bifurcation at a conical intersection, a phenomenon that has remained elusive to traditional spectroscopic probes. The study also resolved the specific vibrational excitations, namely the umbrella and breathing modes, within the Trifluoromethyl (CF3) fragment during the dissociation process. These experimental efforts provided a rigorous benchmark for validating the predictive capabilities of sophisticated ab initio nonadiabatic dynamics calculations.
Main Methods:
The experimental framework utilized Ultrafast gas-phase electron diffraction (UED) to capture the structural dynamics of Trifluoroiodomethane (CF3I) with unprecedented spatial and temporal precision. This technique involves the interaction of femtosecond electron pulses with a molecular beam, producing diffraction patterns that encode the instantaneous interatomic distances within the sample. The researchers configured the system to simultaneously monitor the structural changes occurring through both one-photon and two-photon excitation pathways. By analyzing the time-dependent changes in the diffraction intensity, the team reconstructed the three-dimensional trajectories of the nuclear wave packets. The methodology specifically focused on identifying the splitting of the wave packet as it encountered the conical intersection between the excited electronic states. Advanced computational algorithms were employed to extract the vibrational signatures of the fragments, allowing for the differentiation between the umbrella and breathing modes.
Main Results:
The experimental data provided a clear visualization of a coherent nuclear wave packet bifurcating onto two distinct potential energy surfaces upon reaching a conical intersection. In the two-photon excitation channel, the researchers successfully mapped the real-space evolution of the molecular geometry as the wave packet traversed the nonadiabatic region. The one-photon channel results revealed the simultaneous excitation of the umbrella and breathing vibrational modes within the Trifluoromethyl (CF3) fragment. These findings demonstrated that the dissociation process involves complex nuclear motion across multiple dimensions, rather than a simple one-dimensional bond cleavage. The high-resolution diffraction patterns allowed for the precise determination of atomic positions, confirming the theoretical predictions of wave-packet behavior during nonadiabatic transitions. These results serve as a rigorous validation for ab initio nonadiabatic dynamics calculations, which previously lacked direct experimental confirmation of such detailed structural trajectories.
Conclusions:
This study establishes ultrafast gas-phase electron diffraction as a definitive tool for imaging the nonadiabatic dynamics of polyatomic molecules in real time. The direct observation of wave-packet bifurcation at a conical intersection provides fundamental insights into the mechanisms governing energy transfer in excited-state chemistry. These results suggest that the spatial resolution afforded by UED is essential for capturing the nuances of molecular motion that are invisible to purely temporal probes. The successful characterization of vibrational modes in the dissociation fragments opens new avenues for studying energy redistribution in complex chemical reactions. Future applications of this technology could include the investigation of larger, more biologically relevant molecules where conical intersections play a vital role in photoprotection. The researchers conclude that their findings provide the necessary experimental benchmarks to refine and improve computational models of nonadiabatic processes in molecular physics.
Based on this study's findings, the intersection acts as a nonadiabatic gateway that causes the coherent nuclear wave packet to bifurcate. This splitting directs the molecular population onto two separate potential energy surfaces, governing the subsequent reaction pathways during the photodissociation of the Trifluoroiodomethane molecule.
The researchers identified the simultaneous excitation of the umbrella and breathing vibrational modes within the Trifluoromethyl (CF3) fragment. These dynamics were resolved in multiple nuclear dimensions, providing a detailed map of how energy is distributed among the internal degrees of freedom during molecular fragmentation.
The researchers employed ultrafast gas-phase electron diffraction because it provides the sub-angstrom spatial resolution necessary to image wave-packet trajectories directly. This technique allowed the team to capture the real-space positions of atoms in Trifluoroiodomethane as they moved through the conical intersection on femtosecond timescales.
The authors note that previous ultrafast probes lacked sufficient spatial resolution to directly image wave-packet trajectories through conical intersections. By using electron diffraction, this study successfully resolved the bifurcation of nuclear wave packets, a structural detail that remained hidden in earlier spectroscopic investigations of polyatomic molecules.
The study's authors propose that these experimental findings serve as a vital benchmark for validating ab initio nonadiabatic dynamics calculations. By providing direct structural evidence of wave-packet bifurcation, the data allows theorists to refine computational models that predict the behavior of molecules in excited electronic states.