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April 12, 2026Science Advances0 citationsOpen Access

Pressure-driven steric hindrance engineering for maximizing photoluminescence in covalent organic frameworks

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YWY. WangYLYaozu LiuZWZheng Wang

Key Points

  • This research aims to enhance the photoluminescence in covalent organic frameworks through steric hindrance engineering and pressure treatment.
  • Utilized pressure treatment on pyrene-based imine COFs
  • Examined Py-Da-COF, Py-Da-2CH3-COF, and Py-Da-4CH3-COF
  • Conducted experimental and theoretical analyses on structural changes
  • Assessed photoluminescence quantum yield before and after treatment
  • Py-Da-4CH3-COF achieved a photoluminescence quantum yield increase from 14.7% to 91.5%
  • Steric hindrance reduced π-π interactions and nonradiative decay
  • Structural rearrangement locked COF into a quasi-AB stacking configuration

Abstract

Covalent organic frameworks (COFs) are promising platforms for smart photoluminescent (PL) materials, but their emission is often quenched by π-π stacking–induced nonradiative transitions. Here, we use a pressure-treatment strategy on a series of sterically engineered pyrene-based imine COFs—Py-Da-COF, Py-Da-2CH 3 -COF, and Py-Da-4CH 3 -COF—to achieve steric-hindrance–responsive PL enhancement. Notably, the pressure-treated Py-Da-4CH 3 -COF exhibits an increase in PL quantum yield, reaching a record-high value of 91.5% from the initial 14.7%. Experimental and theoretical analyses reveal that the bulky methyl substituents elevate the phase transition barrier, locking the COF into an irreversible a quasi–AB stacking configuration. This structural rearrangement suppresses π-π interactions and restricts carbon-hydrogen vibrations, minimizing nonradiative decay. Our work establishes a generalizable approach to designing high-performance PL COFs for practical optoelectronic applications.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69db37ca4fe01fead37c5de8https://doi.org/10.1126/sciadv.aeb5242
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