Fang Zhao, Christian Hernández‐Álvarez, Illia E. Serdiuk, Michał Mońka, Sebastian Mahlik, Marcin Runowski
Designing luminescent materials with controllable responses to external stimuli is important for optical sensing applications. Here, two heavy-halogen-substituted donor–acceptor emitters based on a dibenzo[ a, c ]phenazine-3,6-dicarbonitrile scaffold were synthesized and investigated as low-pressure optical sensors under UV excitation (365 nm). In Zeonex films, both compounds exhibit thermally activated delayed fluorescence (TADF), where the emission intensity strongly depends on oxygen concentration, enabling pressure-dependent luminescence. Reduced pressure suppresses oxygen-induced triplet quenching, resulting in enhanced delayed fluorescence. Halogen substitution modulates the photophysical processes and leads to different sensing performances. The brominated derivative shows a maximum pressure sensitivity of 6.8% mbar –1 in the range of 0.1–100 mbar, while the iodinated analogue reaches 1.8% mbar –1 between 1 and 700 mbar. The weak temperature dependence allows reliable pressure readout within the investigated temperature range. These results demonstrate that heavy-halogen substitution provides an effective strategy for developing oxygen-regulated TADF materials for optical pressure sensing.