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PVP-driven surface engineered Ce(3+) doped Dy(2)O(3) nanoparticles for dual mode thermo and photoluminescence studies in TLD, forensic, anti-counterfeiting, and solid-state lighting applications.

PubMed
Authors: Gopal K, Sunitha DV, Gnana Prakash AP

Year

2026

Paper ID

9709

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

237

Citations

0

Abstract

Dysprosium oxide (DyO) nanoparticles doped with cerium ions (Ce, 1-9 mol%) were synthesized using a solution combustion approach and functionalized with polyvinylpyrrolidone (PVP, 9 wt%) to enhance surface stability and optical response. X-ray diffraction analysis confirmed a pure cubic phase with decreasing crystallite size (∼20 to ∼12 nm) as the Ce concentration increased. Infrared spectroscopy and high-resolution electron microscopy revealed effective surface coordination between metal oxygen bonds and the PVP matrix, leading to a uniform particle dispersion by forming a core shell. Optical measurements showed a progressive widening of the band gap (4.85-5.09 eV), attributed to both surface passivation and size-induced quantum effects. Photoluminescence studies revealed distinct emission peaks at 476 nm (blue), 578 nm (yellow), and 663 nm (red), with the maximum intensity at 9 mol% Ce, indicating efficient Ce → Dy energy transfer and suppression of non-radiative pathways. The optimized composition exhibited a high photoluminescence quantum yield of 86.12 ± 2.5% and a fast decay time of 6.1 ns. Chromaticity analysis yielded a correlated color temperature of 6644 K and a color rendering index of 97, suitable for warm white lighting. Additionally, thermoluminescence measurements revealed a stable glow peak near 325 °C with an activation energy of 1.17 eV, demonstrating applicability in high-dose radiation sensing. The nanomaterial also displayed strong fluorescence under UV illumination, enabling effective visualization of latent fingerprints and anti-counterfeiting features. These results highlight the multifunctional capabilities of Ce modified DyO nanoparticles engineered through PVP-assisted surface modification, positioning them as promising candidates for advanced photonic, security, and sensor technologies.

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  • Dysprosium oxide (DyO) nanoparticles doped with cerium ions (Ce, 1-9 mol%) were synthesized using a solution combustion approach and functionalized with polyvinylpyrrolidone...

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Current Paper #9709 #68465 Bounding Eigenstate Overlap fro... #68440 Classical State Preparation for... #68437 Transition-state lattice modes ... #68423 Selective Fermi-Level Pinning: ...

External citation index: OpenAlex citation signal • updated 2026-06-12 09:39:53

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