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Updated: Jan 8, 2026

High Resolution Phonon-assisted Quasi-resonance Fluorescence Spectroscopy
Published on: June 28, 2016
High-Capacity Optical Fingerprinting Using Dual-Peak Photoluminescence of Quantum Dots
Syeda Ramsha Ali1, Stephen V Kershaw2, Yinglong Zhu3
1School of Electronics and Computer Science, University of Southampton, Southampton SO17 1BJ, U.K.
Abstract:
Counterfeiting and unauthorized duplication continue to pose significant threats across industries, ranging from electronics to pharmaceuticals. In response to this challenge, we present a novel optical fingerprinting platform based on cadmium-free CuInS2/ZnS quantum dots (QDs), which exhibit a distinctive dual-peak photoluminescence (PL) signature. Time-resolved PL (TRPL) analysis confirms the distinct recombination origins of the two peaks, supporting the assignment to core- and interfacial/shell-related states. Our approach extracts two intrinsically coupled emissions from a single QD type, where both peaks originate within the same nanostructure, making the fingerprint inherently unclonable. This phenomenon enables the generation of rich tunable spectral profiles across a selected range of excitation wavelengths. Using spectral-to-digital processing, we extracted three features from both emission peaks under 10 excitation wavelengths to generate binary fingerprints. The resulting theoretical encoding capacity is estimated to be 1.2 × 1018 compared to an experimental error probability of ∼3 × 10-17. These findings validate the strength and security of the proposed fingerprinting system, highlighting its practical potential for anticounterfeiting applications.

