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March 3, 2026Materials Today Quantum0 citationsOpen Access

Molecular insights into balanced hole and electron transport in urea-modified fluorene for OLED applications

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GKG.S. Gopika KrishnanUniversity of CalicutKMK. MuraleedharanUniversity of Calicut

Key Points

  • Charge transport balance improves significantly with urea substitution at fluorene's 9-position, promoting ambipolar behavior.
  • 9FU displays favorable electronic characteristics, such as higher ionisation potentials and electron affinities compared to fluorene.
  • Excitation analysis reveals the transition from local transitions in fluorene to charge transfer states in 9FU, enhancing its optical properties.
  • These findings indicate the potential of 9FU as an effective candidate for OLED applications, urging further exploration.

Abstract

The optoelectronic and charge-transport characteristics of fluorene (F) and its urea derivative, N-(9H-fluoren-9-yl) urea (9FU), are investigated in this work using DFT and TD-DFT. Electronic excitations, charge extraction parameters, ionisation potentials, electron affinities, and reorganisation energies were all methodically examined. The findings demonstrate that urea substitution at fluorene's 9-position increases charge-transfer balance and electron magnetism, allowing for ambipolar behaviour. 9FU has better charge-transport and excitation properties than fluorene, suggesting that it could be used in effective OLED applications. • High conjugation and planarity in F and 9FU enable efficient charge transport. • Urea substitution causes a strong red shift, enhancing ICT behaviour. • Excitation analysis shows a shift from local transitions (F) to ICT-dominated in 9FU. • Optoelectronic improvements make 9FU a strong OLED candidate.

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Cite This Study

Krishnan et al. (2026) studied this question.

synapsesocial.com/papers/69a7613ac6e9836116a2ef32https://doi.org/10.1016/j.mtquan.2026.100060
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