High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling
This work aims to prepare the silicon nanoparticles with the nanocrystal-embedded amorphous structure through spark erosion followed by bead milling. Spark erosion breaks up monocrystal silicon ingots into micro/nanoparticles, refines the crystal grains, makes the crystals randomly disordered, and i...
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doaj-67edaaf8735f46bab181e4f73ad854702021-02-28T00:02:48ZengMDPI AGNanomaterials2079-49912021-02-011159459410.3390/nano11030594High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead MillingMingcai Zhao0Juan Zhang1Wei Wang2Qi Zhang3College of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, ChinaCollege of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, ChinaCollege of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, ChinaBCMaterials, Basque Center for Materials, Applications and Nanostructures, UPV/EHU Science Park, 48940 Leioa, SpainThis work aims to prepare the silicon nanoparticles with the nanocrystal-embedded amorphous structure through spark erosion followed by bead milling. Spark erosion breaks up monocrystal silicon ingots into micro/nanoparticles, refines the crystal grains, makes the crystals randomly disordered, and increases isotropic character. Bead milling further refines the crystal grains to a few nanometers and increases the amorphous portion in the structure, eventually forming an amorphous structure with the nanocrystals embedded. Spark erosion saves much time and energy for bead milling. The crystallite size and the amount of amorphous phase could be controlled through varying pulse durations of spark discharge and bead milling time. The final particles could contain the nanocrystals as small as 4 nm and the content of amorphous phase as high as 84% and could be considered as amorphous-like Si nanoparticles. This processing route for Si nanoparticles greatly reduced the production time and the energy consumption and, more importantly, is structure-controllable and scalable for mass production of the products with higher purity.https://www.mdpi.com/2079-4991/11/3/594Silicon nanoparticleamorphous-likenanocrystalspark erosionbead milling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mingcai Zhao Juan Zhang Wei Wang Qi Zhang |
spellingShingle |
Mingcai Zhao Juan Zhang Wei Wang Qi Zhang High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling Nanomaterials Silicon nanoparticle amorphous-like nanocrystal spark erosion bead milling |
author_facet |
Mingcai Zhao Juan Zhang Wei Wang Qi Zhang |
author_sort |
Mingcai Zhao |
title |
High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling |
title_short |
High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling |
title_full |
High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling |
title_fullStr |
High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling |
title_full_unstemmed |
High Effective Preparation of Amorphous-Like Si Nanoparticles Using Spark Erosion Followed by Bead Milling |
title_sort |
high effective preparation of amorphous-like si nanoparticles using spark erosion followed by bead milling |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2021-02-01 |
description |
This work aims to prepare the silicon nanoparticles with the nanocrystal-embedded amorphous structure through spark erosion followed by bead milling. Spark erosion breaks up monocrystal silicon ingots into micro/nanoparticles, refines the crystal grains, makes the crystals randomly disordered, and increases isotropic character. Bead milling further refines the crystal grains to a few nanometers and increases the amorphous portion in the structure, eventually forming an amorphous structure with the nanocrystals embedded. Spark erosion saves much time and energy for bead milling. The crystallite size and the amount of amorphous phase could be controlled through varying pulse durations of spark discharge and bead milling time. The final particles could contain the nanocrystals as small as 4 nm and the content of amorphous phase as high as 84% and could be considered as amorphous-like Si nanoparticles. This processing route for Si nanoparticles greatly reduced the production time and the energy consumption and, more importantly, is structure-controllable and scalable for mass production of the products with higher purity. |
topic |
Silicon nanoparticle amorphous-like nanocrystal spark erosion bead milling |
url |
https://www.mdpi.com/2079-4991/11/3/594 |
work_keys_str_mv |
AT mingcaizhao higheffectivepreparationofamorphouslikesinanoparticlesusingsparkerosionfollowedbybeadmilling AT juanzhang higheffectivepreparationofamorphouslikesinanoparticlesusingsparkerosionfollowedbybeadmilling AT weiwang higheffectivepreparationofamorphouslikesinanoparticlesusingsparkerosionfollowedbybeadmilling AT qizhang higheffectivepreparationofamorphouslikesinanoparticlesusingsparkerosionfollowedbybeadmilling |
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