Skip to main page content
U.S. flag

An official website of the United States government

Dot gov

The .gov means it’s official.
Federal government websites often end in .gov or .mil. Before sharing sensitive information, make sure you’re on a federal government site.

Https

The site is secure.
The https:// ensures that you are connecting to the official website and that any information you provide is encrypted and transmitted securely.

Access keys NCBI Homepage MyNCBI Homepage Main Content Main Navigation
. 2025 Mar 24;30(7):1439.
doi: 10.3390/molecules30071439.

Transient-Absorption Pump-Probe Spectra as Information-Rich Observables: Case Study of Fulvene

Affiliations

Transient-Absorption Pump-Probe Spectra as Information-Rich Observables: Case Study of Fulvene

Zhaofa Li et al. Molecules. .

Abstract

Conical intersections (CIs) are the most efficient channels of photodeactivation and energy transfer, while femtosecond spectroscopy is the main experimental tool delivering information on molecular CI-driven photoinduced processes. In this work, we undertake a comprehensive ab initio investigation of the CI-mediated internal conversion in fulvene by simulating evolutions of electronic populations, bond lengths and angles, and time-resolved transient absorption (TA) pump-probe (PP) spectra. TA PP spectra are evaluated on the fly by combining the symmetrical quasiclassical/Meyer-Miller-Stock-Thoss (SQC/MMST) dynamics and the doorway-window representation of spectroscopic signals. We show that the simulated time-resolved TA PP spectra reveal not only the population dynamics but also the key nuclear motions as well as mode-mode couplings. We also demonstrate that TA PP signals are not only experimental observables: They can also be considered as information-rich purely theoretical observables, which deliver more information on the CI-driven dynamics than conventional electronic populations. This information can be extracted by the appropriate theoretical analyses of time-resolved TA PP signals.

Keywords: conical intersections; doorway window approximation; symmetrical quasiclassical/Meyer–Miller–Stock–Thoss; transient absorption pump-probe spectroscopy.

PubMed Disclaimer

Conflict of interest statement

The authors declare no conflicts of interest.

Figures

Figure 6
Figure 6
Fourier transforms of the normalized TA PP spectra of fulvene with respect to the population time τ: IintSE(Ω,ωpr) (a,c) and IintESA(Ω,ωpr) (b,d). The upper spectra are computed by integrating from 0 to 600 fs, while the lower spectra are evaluated by integrating from 10 to 600 fs. In addition, the tiny black curves in the inset of (a) show the splitting of the board peaks.
Figure A1
Figure A1
Normalized (a) SE signal and (b) GSB signal of fulvene versus the delay time τ and the probe signal ωpr obtained at the SA2-CASSCF(6,6) level of electronic structure theory. The pump-pulse frequency ωpu=4.39 eV is resonant with the S1 state.
Figure A2
Figure A2
Normalized SE (a), ESA (b), GSB (c), and total (d) integral TA PP spectra of fulvene vs. pump-probe delay τ and the probe carrier frequency ωpr evaluated up to 600 fs. The carrier frequency of the pump pulse, ωpu=4.39 eV, is in resonance with the S1 state.
Figure A3
Figure A3
Fourier transforms of the normalized cold (a,c) and hot (b,d) GSB spectra of fulvene. The upper spectra are computed by integrating from 0 to 600 fs, while the lower spectra are evaluated by integrating from 10 to 600 fs.
Figure A4
Figure A4
Normalized time-dependent distributions of C4–C5 stretch (a,d), C1–C2, and C1–C3 asymmetric stretches (b,e), and C2–C4 and C3–C5 asymmetric stretches (c,f). The upper panels are evaluated for the first excited state S1, while the lower panels are evaluated for S0.
Figure A5
Figure A5
Normalized Fourier transform of (a) C1–C6, (b) C1–C2/C1–C3, (c) C2–C4/C3–C5, (d) C4–C5, and (e) C2–C1–C3 bending.
Figure 1
Figure 1
Optimized equilibrium structures of fulvene in (a) S0, (b) S1, and (c) CI.
Figure 2
Figure 2
Time-dependent populations of the S0 and S1 states of fulvene.
Figure 3
Figure 3
Normalized SE (a), ESA (b), GSB (c), and total (d) integral TA PP spectra of fulvene vs. pump-probe delay τ and the probe carrier frequency ωpr. The carrier frequency of the pump pulse, ωpu=4.39 eV, is in resonance with the S1 state.
Figure 4
Figure 4
(a) Linear interpolated PESs of S0 and S1 between S0 minimum and S0/S1 CI obtained at SA2-CASSCF(6,6)/6-31G(d) and SA6-CASSCF(6,6)/6-31G(d) levels. (b) Linear interpolated TDMs from S0 to S1 between S0 minimum and S0/S1 CI obtained at SA2-CASSCF(6,6)/6-31G(d) and SA6-CASSCF(6,6)/6-31G(d) levels. (c) Linear interpolated PESs from S0 to S5 between S0 minimum and S0/S1 CI. (d) Linear interpolated TDMs from S1 to S2S5 between S0 minimum and S0/S1 CI.
Figure 5
Figure 5
Normalized time-dependent distributions of C1–C6 bond lengths (a,e), C1–C2 and C1–C3 symmetric stretches (b,f), C2–C4 and C3–C5 symmetric stretches (c,g), and C2–C1–C3 bendings (d,h). The upper panels are evaluated for the first excited state S1, while the lower panels are evaluated for S0.

Similar articles

References

    1. Domcke W., Yarkony D., Köppel H. Conical Intersections: Electronic Structure, Dynamics & Spectroscopy. Volume 15 World Scientific; Singapore: 2004.
    1. Domcke W., Yarkony D.R., Köppel H. Conical Intersections: Theory, Computation and Experiment. Volume 17 World Scientific; Singapore: 2011.
    1. Yarkony D.R. Nonadiabatic Quantum Chemistry Past, Present, and Future. Chem. Rev. 2012;112:481–498. - PubMed
    1. Jasper A.W., Zhu C., Nangia S., Truhlar D.G. Introductory lecture: Nonadiabatic effects in chemical dynamics. Faraday Discuss. 2004;127:1–22. - PubMed
    1. Worth G.A., Cederbaum L.S. Beyond Born-Oppenheimer: Molecular dynamics through a conical intersection. Annu. Rev. Phys. Chem. 2004;55:127–158. - PubMed

LinkOut - more resources