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Investigation of electrical resistivity and phase stability in superionic Cu₂Se nanocomposite reinforced with well-distributed Cu₅Zn₈ CMA nanoparticles

  • 01-12-2025
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Abstract

This study delves into the electrical resistivity and phase stability of superionic Cu₂Se nanocomposites reinforced with well-distributed Cu₅Zn₈ complex metallic alloy (CMA) nanoparticles. The research systematically investigates the impact of ball-milling time on the microstructure and electrical transport properties of Cu₂Se–1 wt% Cu₅Zn₈ nanocomposites. Key findings include the reduction in grain size with increased milling duration, significant changes in electrical properties, and the transition from the superionic β-Cu₂Se phase to the α-Cu₂Se and Cu₁․₇₅Se phases. The study also explores the temperature dependence of carrier mobility, carrier concentration, and electrical resistivity, highlighting the interplay between temperature, carrier scattering, and phase composition. The results demonstrate that moderate mechanical activation optimizes the balance between structural refinement and electronic transport, making this nanocomposite a promising candidate for thermoelectric applications.

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Title
Investigation of electrical resistivity and phase stability in superionic Cu₂Se nanocomposite reinforced with well-distributed Cu₅Zn₈ CMA nanoparticles
Authors
Mohammad Kazem Taghvaee
Ehsan Borhani
Ashkan Zolriasatein
Publication date
01-12-2025
Publisher
Springer US
Published in
Journal of Materials Science: Materials in Electronics / Issue 34/2025
Print ISSN: 0957-4522
Electronic ISSN: 1573-482X
DOI
https://doi.org/10.1007/s10854-025-16168-x
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