AI Article Synopsis

  • Zero-dimensional hybrid metal halides have been identified as promising materials for room-temperature phosphorescence (RTP), but challenges remain in optimizing their phosphorescence performance and stability in water.
  • Researchers developed a new family of hybrid zinc halides, (BTPP)ZnX, which combines organic and inorganic components to achieve multiple types of phosphorescence, including long-lasting green afterglow and cyan phosphorescence.
  • This family displays strong resistance to degradation in aqueous environments, with impressive photoluminescence quantum yields and lifetimes, making them suitable for anti-counterfeiting applications in various chemical conditions.

Article Abstract

Zero-dimensional (0D) hybrid metal halides have been emerged as room-temperature phosphorescence (RTP) materials, but synchronous optimization of multiple phosphorescence performance in one structural platform remains less resolved, and stable RTP activity in aqueous medium is also unrealized due to serious instability toward water and oxygen. Herein, we demonstrated a photophysical tuning strategy in a new 0D hybrid zinc halide family of (BTPP)ZnX (BTPP=benzyltriphenylphosphonium, X=Cl and Br). Infrequently, the delicate combination of organic and inorganic species enables this family to display multiple ultralong green afterglow and efficient self-trapped exciton (STE) associated cyan phosphorescence. Compared with inert luminescence of [BTPP] cation, incorporation of anionic [ZnX] effectively enhance the spin-orbit coupling effect, which significantly boosts the photoluminescence quantum yield (PLQY) up to 30.66 % and 54.62 % for afterglow and phosphorescence, respectively. Synchronously, the corresponding luminescence lifetime extend to 143.94 ms and 0.308 μs surpassing the indiscernible phosphorescence of [BTPP]X salt. More importantly, this halide family presents robust RTP emission with nearly unattenuated PLQY in water and harsh condition (acid and basic aqueous solution) over half a year. The highly efficient integrated afterglow and STE phosphorescence as well as ultrahigh aqueous state RTP realize multiple anti-counterfeiting applications in wide chemical environments.

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Source
http://dx.doi.org/10.1002/anie.202412350DOI Listing

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