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Potent strategy towards strongly emissive nitroaromatics through a weakly electron-deficient core
Authors:Bart&#x;omiej Sadowski  Marzena Kaliszewska  Yevgen M Poronik  Ma&#x;gorzata Czichy  Patryk Janasik  Marzena Banasiewicz  Dominik Mierzwa  Wojciech Gadomski  Trevor D Lohrey  John A Clark  Mieczys&#x;aw &#x;apkowski  Boles&#x;aw Kozankiewicz  Valentine I Vullev  Andrzej L Sobolewski  Piotr Piatkowski  Daniel T Gryko
Abstract:Nitroaromatics seldom fluoresce. The importance of electron-deficient (n-type) conjugates, however, has inspired a number of strategies for suppressing the emission-quenching effects of the strongly electron-withdrawing nitro group. Here, we demonstrate how such strategies yield fluorescent nitroaryl derivatives of dipyrrolonaphthyridinedione (DPND). Nitro groups near the DPND core quench its fluorescence. Conversely, nitro groups placed farther from the core allow some of the highest fluorescence quantum yields ever recorded for nitroaromatics. This strategy of preventing the known processes that compete with photoemission, however, leads to the emergence of unprecedented alternative mechanisms for fluorescence quenching, involving transitions to dark nπ* singlet states and aborted photochemistry. Forming nπ* triplet states from ππ* singlets is a classical pathway for fluorescence quenching. In nitro-DPNDs, however, these ππ* and nπ* excited states are both singlets, and they are common for nitroaryl conjugates. Understanding the excited-state dynamics of such nitroaromatics is crucial for designing strongly fluorescent electron-deficient conjugates.

Dipyrrolonaphthyridinedione appended with para- or meta-nitrophenyl substituents exhibits strong fluorescence from a 1ππ* S1 state.
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