Sustainable clove-derived nitrogen-doped carbon dots with programmable multimodal fluorescence for metal ion and
Mallika Phull1, Mandeep Kaur1, Yashika Singla1
1Department of Chemistry and Biochemistry, Thapar Institute of Engineering and Technology Patiala 147004 India Banibrata.maity@thapar.edu phullmallika96@gmail.com mkaur3_phd19@thapar.edu yyashika_msc22@thapar.edu uurvashi_phd24@thapar.edu amjadali@thapar.edu.
Abstract:
The development of sustainable fluorescent nanomaterials from renewable biomass represents a promising strategy for environmentally benign chemical sensing. In this work, nitrogen-doped carbon dots (N-CDs) were synthesized from clove biomass using glycine as a nitrogen source through a rapid microwave-assisted pyrolysis route, providing a greener and significantly more energy-efficient alternative to conventional hydrothermal synthesis by reducing the overall reaction and cooling time (by approximately 75%), thereby lowering the overall energy requirements through rapid and volumetric heating while providing an efficient route for the synthesis of highly fluorescent N-CDs. The resulting N-CDs exhibited a quasi-spherical morphology with an average particle size of 7.20 nm, excitation-dependent fluorescence, excellent water dispersibility, outstanding photostability, and a high quantum yield of 29.42%. Structural characterization by XPS, FTIR, and Raman spectroscopy confirmed successful nitrogen incorporation and abundant surface functional groups responsible for their favorable optical properties. The N-CDs functioned as a highly selective fluorescent nanoprobe for Fe(iii) and Cr(vi) ions via fluorescence quenching, achieving low detection limits of 73.93 nM and 49.16 nM, respectively. Notably, the Fe(iii)-quenched system exhibited selective fluorescence recovery upon the addition of F- ions, whereas no recovery was observed for the Cr(vi)-quenched system, enabling differential discrimination between the two analytes and subsequent F- detection with a detection limit of 1.69 µM. This work demonstrates a sustainable biomass-derived fluorescent nanoprobe that integrates rapid green synthesis with selective dual-mode sensing, providing an efficient platform for the sensitive monitoring of environmentally relevant metal ions and fluoride in aqueous media.

