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Enhanced Upconversion Luminescence and Physical Characteristics of Ho³⁺-Doped Tungsten Tellurite Glasses for Photonic Applications

Authors

Smriti Tiwari.

Department of Physics, Madhyanchal Professional University, Bhopal, India (India)

Ghizal F. Ansari

Department of Physics, Madhyanchal Professional University, Bhopal, India (India)

Article Information

DOI: 10.51583/IJLTEMAS.2026.150700143

Subject Category: Luminescence

Volume/Issue: 15/7 | Page No: 1850-1856

Publication Timeline

Submitted: 2026-08-13

Accepted: 2026-08-18

Published: 2026-08-24

Abstract

Holmium (Ho³⁺)-doped tungsten tellurite glasses with the composition (70−x)TeO₂–10Na₂O–20WO₃–xHo₂O₃ (x = 0.5–1.5 mol%) were successfully synthesized using the conventional melt-quenching technique to investigate their suitability for visible upconversion and photonic applications. X-ray diffraction analysis confirmed the amorphous nature of all prepared samples, while differential scanning calorimetry demonstrated good thermal stability with a glass transition temperature of approximately 310 °C and a crystallization temperature near 500 °C. Various physical parameters, including density, molar volume, lanthanide ion concentration, polaron radius, interionic distance, field strength, and oxygen packing density, were evaluated to understand the structural modifications induced by Ho³⁺ incorporation. The density and lanthanide ion concentration increased systematically with increasing Ho³⁺ content, whereas the molar volume, interionic distance, and polaron radius decreased, indicating progressive densification and strengthening of the glass network. Optical absorption spectra exhibited characteristic Ho³⁺ transitions in the visible and near-infrared regions, confirming efficient incorporation of rare-earth ions into the tellurite glass matrix. Under 980 nm laser excitation, intense upconversion emissions centered at approximately 547 nm (green), 660 nm (red), and 760 nm (near-infrared) were observed, corresponding to the ⁵F₄/⁵S₂ → ⁵I₈, ⁵F₅ → ⁵I₈, and ⁵S₂ → ⁵I₇ transitions of Ho³⁺ ions, respectively. The emission intensity increased with excitation power, demonstrating efficient excited-state absorption and cross-relaxation processes responsible for the observed upconversion mechanism. The combination of favorable thermal stability, enhanced physical characteristics, and strong visible upconversion emission demonstrates that Ho³⁺-activated tungsten tellurite glasses are promising candidates for solid-state lasers, optical amplifiers, color display devices, and other advanced photonic applications.

Keywords

Tellurite glass; Ho³⁺ ions; Upconversion luminescence; Melt-quenching; Rare-earth-doped glasses; Photonic materials; Optical spectroscopy.

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