<?xml version="1.0"?>
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  <record>
    <language>eng</language>
    <publisher>Ansari Education and Research Society</publisher>
    <journalTitle>Journal of Ultra Scientist of Physical Sciences</journalTitle>
    <issn/>
    <eissn/>
    <publicationDate>August 2026</publicationDate>
    <volume>38</volume>
    <issue>8</issue>
    <startPage>98</startPage>
    <endPage>113</endPage>
    <doi>http://dx.doi.org/10.22147/jusps-B/380801</doi>
    <publisherRecordId>1560</publisherRecordId>
    <documentType>article</documentType>
    <title language="eng">Europium, Terbium, and Dysprosium Ions Doped Tellurite Glasses for White Light-Emitting Diode Applications: A Review</title>
    <authors>
      <author>
        <name>TOUSHEER KHAN</name>
        <affiliationId>1</affiliationId>
      </author>
      <author>
        <name>GHIZAL F. ANSARI</name>
        <affiliationId>1</affiliationId>
      </author>
    </authors>
    <affiliationsList>
      <affiliationName affiliationId="1">Department of Physics, Madhyanchal Professional University, Bhopal - 462044 (INDIA)</affiliationName>
    </affiliationsList>
    <abstract language="eng">&lt;p style="text-align:justify"&gt;Tellurium dioxide (TeO2) based glasses have emerged as one of the most promising inorganzic, binderfree host matrices for rare-earth (RE) doped phosphors intended for white light-emitting diode (WLED) applications. Their low maximum phonon energy, high linear refractive index, wide optical transparency window, and good rare-earth ion solubility distinguish them favourably from conventional silicate, borate, and phosphate glass formers. This review critically surveys the literature on the synthesis, structure, and luminescence of Eu3+ (red), Tb3+ (green), and Dy3+ (blue/yellow) doped tellurite glasses, situating this body of work within the broader context of solid-state lighting and phosphor-converted LED research. The structural chemistry of the TeO2 network, the Judd&amp;ndash;Ofelt framework used to quantify radiative transition probabilities, and the F&amp;ouml;rster&amp;ndash; Dexter and Inokuti&amp;ndash;Hirayama models of inter-ionic energy transfer are reviewed as the principal analytical tools underpinning this field. Reported single-ion, pairwise co-doped, and tri-doped rare-earth tellurite and related oxide-glass systems are compared in terms of their radiative parameters and CIE/CCT/CRI colorimetric outcomes. Although each of Eu3+, Tb3+, and Dy3+, and several pairwise combinations, have been extensively studied in tellurite hosts, the simultaneous tri-doping of a single tellurite glass with all three ions to realise a singlecomposition, single-excitation white emitter, a strategy already demonstrated in borate, phosphate, and halophosphate hosts, remains largely unexplored. This gap is identified as a clear and well-motivated direction for future research.&lt;/p&gt;&#xD;
</abstract>
    <fullTextUrl format="html">https://ultraphysicalsciences.org/paper/1560/</fullTextUrl>
    <keywords>
      <keyword language="eng">ellurite glass; rare-earth doping</keyword>
    </keywords>
    <keywords>
      <keyword language="eng"></keyword>
    </keywords>
    <keywords>
      <keyword language="eng">white light-emitting diode</keyword>
    </keywords>
  </record>
</records>
