A naphthalene-based azo armed molecular framework for selective sensing of Al3+open access
- Authors
- Mabhai, Subhabrata; Dolai, Malay; Dey, Surya Kanta; Choudhury, Sujata Maiti; Das, Bhriguram; Dey, Satyajit; Jana, Atanu; Banerjee, Deb Ranjan
- Issue Date
- Apr-2022
- Publisher
- Royal Society of Chemistry
- Keywords
- Aluminum; Naphthalene; Density Functional Theory; Electron Transitions; Fluorescence; Fluorescence Spectroscopy; Fourier Transform Infrared Spectroscopy; Image Enhancement; Ligands; Metal Ions; Metals; Ph; Chemo-sensors; Enhanced Fluorescence; Isomerisation; Molecular Frameworks; Photo-induced Electron Transfer; Schiff-base; Selective Sensing; Sensing Mechanism; Synthesised; Yellow Emissions; Naphthalene; Aluminum; Azo Compound; Ligand; Metal Ion; Naphthalene; Schiff Base; Absorption Spectroscopy; Article; Carbon Nuclear Magnetic Resonance; Chelation; Complex Formation; Controlled Study; Cytotoxicity; Density Functional Theory; Electrospray Mass Spectrometry; Fluorescence; Human; Human Cell; Isomerization; Limit Of Detection; Luminescence; Photoluminescence; Proton Nuclear Magnetic Resonance; Spectrofluorometry; Synthesis; Theoretical Study; Time Resolved Spectroscopy
- Citation
- New Journal of Chemistry, v.46, no.15, pp 6885 - 6898
- Pages
- 14
- Indexed
- SCIE
SCOPUS
- Journal Title
- New Journal of Chemistry
- Volume
- 46
- Number
- 15
- Start Page
- 6885
- End Page
- 6898
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/3279
- DOI
- 10.1039/d1nj05869j
- ISSN
- 1144-0546
1369-9261
- Abstract
- An azo armed Schiff base chemosensor was synthesized based on a naphthalene fluorophore, which transduces greenish-yellow emission by complexing with Al3+. It emits greenish-yellow fluorescence through restricted C=N isomerization, chelation-enhanced fluorescence, and the photo-induced electron transfer mechanism. The clear visible transformation of the achromatic ligand to a chromatic ligand by the 1 : 1 complexation with Al3+ is substantiated by ESI-MS spectra. H-1 NMR, C-13 NMR, and FTIR spectroscopies are used to characterize the HL. The selectivity of the HL for Al3+ in the presence of other metal ions was investigated through absorbance and fluorescence spectroscopies. The average lifetimes of HL and L-Al3+ have been evaluated using a time-resolved photoluminescence experiment to explore the sensing mechanism. The Al3+ sensing mechanism was also established by density functional theory calculations. A reversibility experiment was performed, demonstrating that Al3+ binding to HL is reversible. The pH variation on luminescence affirms that the HL can survive in physiological pH. Finally, the lower limit of detection of 5.4 x 10(-7) and a good response in a cytotoxicity and cell imaging study confirm the usability of the ligand as an indelible signature of an effective biosensor for target Al3+.
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Collections - College of Advanced Convergence Engineering > Division of System Semiconductor > 1. Journal Articles

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