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Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing

High entropy oxide nanoparticles (HEO NPs) with multiple component elements possess improved stability and multiple uses for functional applications, including catalysis, data memory, and energy storage. However, the synthesis of homogenous HEO NPs containing five or more immiscible elements with a...

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Detalles Bibliográficos
Autores principales: Han, Xiao, Li, Dian, Zhou, Jingyi, Zheng, Yufeng, Kong, Lingyan, Li, Lin, Yan, Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10228495/
https://www.ncbi.nlm.nih.gov/pubmed/37260480
http://dx.doi.org/10.1039/d3na00090g
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author Han, Xiao
Li, Dian
Zhou, Jingyi
Zheng, Yufeng
Kong, Lingyan
Li, Lin
Yan, Feng
author_facet Han, Xiao
Li, Dian
Zhou, Jingyi
Zheng, Yufeng
Kong, Lingyan
Li, Lin
Yan, Feng
author_sort Han, Xiao
collection PubMed
description High entropy oxide nanoparticles (HEO NPs) with multiple component elements possess improved stability and multiple uses for functional applications, including catalysis, data memory, and energy storage. However, the synthesis of homogenous HEO NPs containing five or more immiscible elements with a single-phase structure is still a great challenge due to the strict synthetic conditions. In particular, several synthesis methods of HEO NPs require extremely high temperatures. In this study, we demonstrate a low cost, facile, and effective method to synthesize three- to eight-element HEO nanoparticles by a combination of electrospinning and low-temperature ambient annealing. HEO NPs were generated by annealing nanofibers at 330 °C for 30 minutes under air conditions. The average size of the HEO nanoparticles was ∼30 nm and homogenous element distribution was obtained from post-electrospinning thermal decomposition. The synthesized HEO NPs exhibited magnetic properties with the highest saturation magnetization at 9.588 emu g(−1) and the highest coercivity at 147.175 Oe for HEO NPs with four magnetic elements while integrating more nonmagnetic elements will suppress the magnetic response. This electrospun and low-temperature annealing method provides an easy and flexible design for nanoparticle composition and economic processing pathway, which offers a cost- and energy-effective, and high throughput entropy nanoparticle synthesis on a large scale.
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spelling pubmed-102284952023-05-31 Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing Han, Xiao Li, Dian Zhou, Jingyi Zheng, Yufeng Kong, Lingyan Li, Lin Yan, Feng Nanoscale Adv Chemistry High entropy oxide nanoparticles (HEO NPs) with multiple component elements possess improved stability and multiple uses for functional applications, including catalysis, data memory, and energy storage. However, the synthesis of homogenous HEO NPs containing five or more immiscible elements with a single-phase structure is still a great challenge due to the strict synthetic conditions. In particular, several synthesis methods of HEO NPs require extremely high temperatures. In this study, we demonstrate a low cost, facile, and effective method to synthesize three- to eight-element HEO nanoparticles by a combination of electrospinning and low-temperature ambient annealing. HEO NPs were generated by annealing nanofibers at 330 °C for 30 minutes under air conditions. The average size of the HEO nanoparticles was ∼30 nm and homogenous element distribution was obtained from post-electrospinning thermal decomposition. The synthesized HEO NPs exhibited magnetic properties with the highest saturation magnetization at 9.588 emu g(−1) and the highest coercivity at 147.175 Oe for HEO NPs with four magnetic elements while integrating more nonmagnetic elements will suppress the magnetic response. This electrospun and low-temperature annealing method provides an easy and flexible design for nanoparticle composition and economic processing pathway, which offers a cost- and energy-effective, and high throughput entropy nanoparticle synthesis on a large scale. RSC 2023-05-19 /pmc/articles/PMC10228495/ /pubmed/37260480 http://dx.doi.org/10.1039/d3na00090g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Han, Xiao
Li, Dian
Zhou, Jingyi
Zheng, Yufeng
Kong, Lingyan
Li, Lin
Yan, Feng
Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
title Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
title_full Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
title_fullStr Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
title_full_unstemmed Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
title_short Electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
title_sort electrospun single-phase spinel magnetic high entropy oxide nanoparticles via low-temperature ambient annealing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10228495/
https://www.ncbi.nlm.nih.gov/pubmed/37260480
http://dx.doi.org/10.1039/d3na00090g
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