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March 27, 2026Advances in Condensed Matter Physics2 citationsOpen Access

Towards Rare‐Earth‐Doped Optoelectronics: GGA+U Analysis of Eu 3+ ‐Doped ZnO Nanomaterials

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SBShahriar Haque BadhanMIMd. Rasidul IslamMIMd. Rasidul Islam

Key Points

  • To investigate the structural, electronic, and optical properties of Eu-doped ZnO using GGA+U methodology.
  • Employ first-principles density functional theory (DFT) with GGA + U framework.
  • Analyze ZnO doped with Eu at concentrations of 3.13%, 4.17%, and 6.25%.
  • Examine structural parameters, electronic structure, and optical behavior.
  • Confirmed lattice parameters and band gap of pristine ZnO align with existing data.
  • Eu doping leads to concentration-dependent lattice expansion and alters electronic structure.
  • Observed a slight modulation of the band gap with increasing Eu content.
  • Modified dielectric behavior indicated reduced UV absorption and enhanced visible absorption.

Abstract

This study employs first‐principles density functional theory (DFT) within the GGA + U framework to systematically investigate the structural, electronic, and optical properties of Eu 3+ ‐doped ZnO at concentrations of 3.13%, 4.17%, and 6.25%. The calculated lattice parameters and band gap of pristine ZnO are consistent with previously reported theoretical and experimental results, confirming the reliability of the adopted computational methodology. Substitutional Eu incorporation leads to concentration‐dependent lattice expansion and induces noticeable modifications in the electronic structure, while preserving the direct band‐gap nature of ZnO. The band gap shows a slight but systematic modulation with increasing Eu content, associated with Eu‐4f‐related impurity states near the band edges. Optical analysis reveals modified dielectric behavior, reduced ultraviolet (UV) absorption intensity, and enhanced absorption in the visible region, accompanied by a blue shift of the dominant UV absorption edge. These results demonstrate that Eu doping enables effective tuning of ZnO’s electronic and optical response, highlighting its potential for UV‐responsive optoelectronic applications such as UV photodetectors and transparent functional coatings.

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Cite This Study

Badhan et al. (2026) studied this question.

synapsesocial.com/papers/69c61fa915a0a509bde18107https://doi.org/10.1155/acmp/4673574
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