Abstract
Although mechanically responsive luminescent materials exhibit substantial potential for information security applications, developing organic systems that combine high contrast ratio, rapid response kinetics, and excellent fatigue resistance remains a formidable challenge. Herein, a Lewis adduct PTBrBA is constructed via B←N coordination, which displays remarkable response under external force. Upon anisotropic grinding and fuming, PTBrBA shows a highly reversible mechanochromic shift from cyan-blue to green. Moreover, under isotropic hydrostatic pressure, it exhibits full-color piezochromic behavior with a continuous redshift from 477 to 668 nm, reaching up to 191 nm. This pronounced redshift results from pressure-induced B←N bond shortening and anisotropic lattice contraction, which cooperatively enhance intra-/inter-molecular charge transfer (CT). At low pressure (<0.4 GPa), the enhanced structural rigidity suppresses non-radiative decay, boosting emission intensity. At higher pressure, the amorphization and stronger π–π stacking promote non-radiative decay, causing emission quenching. Notably, after full pressure release, PTBrBA retains partial structural distortion and long-range disorder, resulting in irreversible optical responses with enhanced intermolecular CT. Finally, PTBrBA shows significant potential in information encryption and anti-counterfeiting applications, enabling vapor-responsive decryption, reversible writing/erasing, and excitation-dependent multicolor patterning. This work offers new perspectives and molecular platforms for designing smart optical systems based on dynamic coordination bonds.
| Original language | English |
|---|---|
| Journal | Advanced Functional Materials |
| DOIs | |
| State | Accepted/In press - 2026 |
| Externally published | Yes |
Keywords
- anti-counterfeiting
- B←N coordination
- charge transfer
- information encryption
- mechanochromic materials
- piezochromic luminescence
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