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April 13, 2026Next Materials1 citationsOpen Access

Tailoring MgO nanoparticles through precursor ratio and calcination: Structural and functional insights

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SRShubhanjali RaikwarJiwaji UniversityYGY.C. GoswamiDevi Ahilya VishwavidyalayaDGDinesh C. GuptaJiwaji University

Key Points

  • The research aims to explore how varying precursor ratios and calcination conditions impact the structural and functional properties of MgO nanoparticles.
  • Synthesis of MgO nanoparticles using a chemical precipitation method with varying NaOH:Mg²⁺ ratios.
  • Controlled heating at 400 °C for phase transformation and crystallinity enhancement.
  • Utilization of XRD, FTIR, SEM, and UV–Vis spectroscopy to analyze structural and optical properties.
  • XRD confirmed conversion from brucite-type Mg(OH)₂ to cubic MgO after calcination.
  • Crystallite size increased from ~8–11 nm to ~12–16 nm post-calcination.
  • Optimal 1:2 precursor ratio produced more uniform and well-defined MgO nanostructures.
  • Tailored nanoparticles demonstrated effective photocatalytic degradation of Rose Bengal dye under visible light.

Abstract

Magnesium oxide (MgO) nanoparticles were synthesized by a chemical precipitation method using different precursor ratios (NaOH:Mg²⁺ = 1:1, 1:2, 1:3), followed by controlled calcination at 400 °C. The effect of precursor concentration and thermal treatment on phase formation, crystallinity, morphology, and optical behaviour was systematically investigated. XRD confirmed that the as-precipitated powders crystallised as brucite-type Mg(OH)₂, while calcination produced single-phase cubic MgO with increased crystallite size (from ∼8–11 nm to ∼12–16 nm). FTIR analysis revealed the disappearance of hydroxyl and nitrate bands after heating, validating dihydroxylation and oxide formation. SEM images showed a clear transformation from loosely stacked lamellar hydroxide platelets in unheated samples to compact granular MgO grains after calcination, with the 1:2 ratio showing relatively more uniform and well-defined morphology under the present conditions. UV–Vis spectroscopy demonstrated band gap narrowing upon heating, attributed to particle growth and defect reorganisation. This work highlights the combined influence of precursor ratio and calcination as key factors in tailoring MgO nanostructures. The findings contribute to a clearer understanding of how precursor ratio and calcination conditions influence crystallinity, optical band gap, and functional properties of MgO nanoparticles. This work provides a systematic evaluation within a conventional precipitation–calcination framework. The results demonstrate the practical relevance of controlled parameter optimization for improving material performance and highlight the potential of MgO nanoparticles as cost-effective and eco-friendly materials for environmental remediation, particularly in the photocatalytic degradation of toxic dyes. • Precipitation synthesis enabled controlled fabrication of MgO nanoparticles by tuning precursor ratios. • Calcination transformed platelet precursors into compact, crystalline cubic MgO nanoparticles. • Optimal 1:2 precursor ratio yielded highly uniform, well-defined MgO nanostructures. • Tailored MgO nanoparticles showed efficient visible-light photocatalytic degradation of Rose Bengal dye.

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Cite This Study

Raikwar et al. (2026) studied this question.

synapsesocial.com/papers/69dc87983afacbeac03e9ceahttps://doi.org/10.1016/j.nxmate.2026.102048
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