Pyrazine-Based Chemosensors for Cation Detection

Pyrazine (1,4-diazine) and its annulated derivatives are promising platforms for colorimetric and fluorescent chemosensors of biologically and environmentally relevant metal cations, including Hg2+, Cu2+, Zn2+, Pb2+, Fe3+, Al3+, Co2+, Ni2+, Ag+ and Cr3+. Their sensing potential arises from the strongly electron-deficient pyrazine ring, low-lying unoccupied molecular orbitals, and considerable synthetic versatility. This review systematically summarizes the structural diversity, metal-ion recognition strategies, photophysical response mechanisms, and practical applications of pyrazine-derived small-molecule chemosensors, with emphasis on studies published between 2015 and 2026. Reported architectures include pyrazinamide, pyrazinehydrazide, 2-acetylpyrazine, aminopyrazine, hydrazinopyrazine, aryl(hetaryl)pyrazine derivatives, pyrazines fused with five-membered carbo/heterocycles, quinoxalines, and pyrido [2,3-b]pyrazines. The analysis shows that N,N,O-tridentate chelation, CHEF/CHEQ, PET, ICT, ESIPT, FRET and AIE mechanisms govern the sensing behavior, providing detection limits from nanomolar to micromolar levels and enabling naked-eye, test-strip, and live-cell imaging applications. It is concluded that sensing performance is primarily determined by the chelating motif and the substitution pattern, while selectivity towards Cu2+ and Fe3+ remains the main limitation. Promising directions include AIE-active long-wavelength emitters, portable smartphone-assisted platforms, MOF-based architectures, and DFT-guided rational design of next-generation pyrazine chemosensors.

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Publication Details

Journal
Molecules
Published
2026-10-08
DOI
https://doi.org/10.3390/molecules31193573
Primary Topic
Molecular Sensors and Ion Detection
Type
article
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article

Pyrazine-Based Chemosensors for Cation Detection

Galina N. Lipunova, Emiliya V. Nosova, Tatyana N. Moshkina
Molecules
Molecular Sensors and Ion Detection
article

Pyrazine-Based Chemosensors for Cation Detection

Galina N. Lipunova, Emiliya V. Nosova, Tatyana N. Moshkina
article en

Abstract

Pyrazine (1,4-diazine) and its annulated derivatives are promising platforms for colorimetric and fluorescent chemosensors of biologically and environmentally relevant metal cations, including Hg2+, Cu2+, Zn2+, Pb2+, Fe3+, Al3+, Co2+, Ni2+, Ag+ and Cr3+. Their sensing potential arises from the strongly electron-deficient pyrazine ring, low-lying unoccupied molecular orbitals, and considerable synthetic versatility. This review systematically summarizes the structural diversity, metal-ion recognition strategies, photophysical response mechanisms, and practical applications of pyrazine-derived small-molecule chemosensors, with emphasis on studies published between 2015 and 2026. Reported architectures include pyrazinamide, pyrazinehydrazide, 2-acetylpyrazine, aminopyrazine, hydrazinopyrazine, aryl(hetaryl)pyrazine derivatives, pyrazines fused with five-membered carbo/heterocycles, quinoxalines, and pyrido [2,3-b]pyrazines. The analysis shows that N,N,O-tridentate chelation, CHEF/CHEQ, PET, ICT, ESIPT, FRET and AIE mechanisms govern the sensing behavior, providing detection limits from nanomolar to micromolar levels and enabling naked-eye, test-strip, and live-cell imaging applications. It is concluded that sensing performance is primarily determined by the chelating motif and the substitution pattern, while selectivity towards Cu2+ and Fe3+ remains the main limitation. Promising directions include AIE-active long-wavelength emitters, portable smartphone-assisted platforms, MOF-based architectures, and DFT-guided rational design of next-generation pyrazine chemosensors.

MoleculesVol. 31(19)
Ural Federal University (RU)
Openalex Percentile: Top 27%
Molecular Sensors and Ion Detection
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