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February 24, 2026International Journal of Quantum Chemistry2 citations

Modulation of Solvent Polarity on Excited State Intramolecular Double Proton Transfer of 8‐( 1H ‐Benzodimidazol‐2‐yl)quinolin‐7‐ol

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CLChang LiuZSZibo ShenJZJinfeng Zhao

Key Points

  • This research aims to understand the influence of solvent polarity on the excited-state double proton transfer of 8-(1H-benzimidazol-2-yl)quinolin-7-ol.
  • Used density functional theory (DFT) and time-dependent DFT (TDDFT) to model solvent effects.
  • Examined cyclohexane, toluene, chloroform, and acetonitrile as solvents with varying polarity.
  • Conducted structural and charge density topology analyses to assess hydrogen bonding and kinetics.
  • Analyzed the potential energy surface for excited-state double proton transfer mechanisms.
  • Stronger hydrogen bonding was observed in low-polarity solvents due to reduced energy barriers.
  • The HOMO-LUMO gap increased in polar solvents, suggesting enhanced intramolecular charge transfer.
  • Non-polar solvents favored the initial step of proton transfer, while polar solvents stabilized intermediates.

Abstract

ABSTRACT This study used density functional theory (DFT) and time‐dependent density functional theory (TDDFT) to investigate how solvent polarity affects the excited‐state double proton transfer (ESDPT) behavior of 8‐(1H‐benzimidazol‐2‐yl)quinolin‐7‐ol (HQB) compound. Cyclohexane, toluene, chloroform, and acetonitrile were selected as model solvents with increasing polarity. Structural, charge density topology, and molecular orbital analyses were conducted to examine the impact of solvent polarity on hydrogen bonding and ESDPT kinetics. Solvent polarity was found to differentially influence two intramolecular hydrogen bonds, O 1 –H 2 ···N 3 and N 4 –H 5 ···N 6 . The strengthening of N 4 –H 5 ···N 6 was identified as a key factor in initiating excited‐state proton transfer (ESPT). With decreasing solvent polarity, hydrogen bond lengths shortened and vibrational frequencies red‐shifted, indicating stronger hydrogen bonding. This was attributed to more localized charge distribution and stronger electrostatic interactions in non‐polar environments. Charge density topology parameters ( ρ ( r ), V ( r )) and binding energy calculations confirmed that the proton transfer energy barrier was lower in low‐polarity solvents. In polar solvents, the HOMO‐LUMO gap of HQB increased, and intramolecular charge transfer (ICT) was enhanced. This altered the electron density at hydrogen bond sites and reduced the energy barrier for proton transfer. Analysis of the S 1 potential energy surface (PES) showed that ESDPT mainly follows a stepwise mechanism: the first proton transfers along N 4 –H 5 ···N 6 to form intermediate III, followed by the second proton transfer along O 1 –H 2 ···N 3 to yield product IV. Non‐polar solvents favored the first step, while polar solvents lowered the energy barrier of the second step by stabilizing intermediate III.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/699d3fb3de8e28729cf6456ehttps://doi.org/10.1002/qua.70168
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