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April 11, 2026International Journal of Molecular Sciences2 citationsOpen Access

Study of Vibronic and Cationic Features of p-Diethoxybenzene via REMPI, Hole-Burning, and MATI Spectroscopy

XQXiateng QinYZYan ZhaoZJZhonghua Ji

Key Points

  • This research aims to explore the molecular structure and spectroscopy of p-diethoxybenzene (PDEB) and its derivatives.
  • Conducted resonance-enhanced multiphoton ionization, hole-burning, and MATI spectroscopy.
  • Calculated ground-state potential energy surface using density functional theory.
  • Identified stable rotamers and their vibronic characteristics through simulations and experiments.
  • Eight rotamers of PDEB were identified with varying energies and statistical weights.
  • Dominant rotamers were resolved with specific transition origins determined.
  • Accurate adiabatic ionization energies for cis and trans rotamers were measured.

Abstract

Phenetole derivatives with dual ethoxy substituents exhibit rich conformational diversity and complex vibronic characteristics, making them important model compounds for understanding substituent effects on molecular structure and spectroscopy. In this work, we systematically investigated the stable rotamers, vibronic spectra, and cationic ground-state features of p-diethoxybenzene (PDEB) using resonance-enhanced multiphoton ionization (REMPI), UV-UV hole-burning (HB), and mass-analyzed threshold ionization (MATI) spectroscopies, combined with density functional theory (DFT) calculations. The ground-state potential energy surface (PES) of PDEB was calculated at the B3LYP/6-311++G(d,p) level, identifying eight rotamers with distinct statistical weights and relative energies. Hole-burning spectroscopy resolved two dominant rotamers (cis/up–up and trans/up–down) in the supersonic molecular beam, with their S1←S0 transition origins determined as 33,824 cm−1 and 33,613 cm−1, respectively. Franck-Condon simulations of the vibronic transitions showed excellent agreement with the experimental REMPI spectra, enabling precise assignment of substituent and benzene ring vibrational modes. MATI experiments yielded accurate adiabatic ionization energies (AIEs) of the cis and trans rotamers as 59,629 ± 5 cm−1 and 59,432 ± 5 cm−1, respectively, and identified active cationic vibrational modes in the D0 state. Geometric parameters of PDEB in the S0, S1, and D0 states were calculated at the B3PW91/aug-cc-pVTZ, TD-B3PW91/aug-cc-pVTZ, and UB3PW91/aug-cc-pVTZ levels, revealing structural evolution during electronic excitation and ionization. The effects of ethoxy substituent orientation on molecular energy, vibrational frequencies, and ionization energy are discussed, and differences in spectral characteristics between PDEB and its meta isomer (MDEB) are compared. This work provides a comprehensive spectral and structural database for p-diethoxybenzene and deepens the understanding of structure–property relationships in diethoxybenzene isomers.

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Cite This Study

Qin et al. (2026) studied this question.

synapsesocial.com/papers/69d9e60578050d08c1b76548https://doi.org/10.3390/ijms27083362
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