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Ion compaction effect in hollow FePt nanochains with ultrathin shell under low energy ion irradiation

  • Jialong Liu*
  • , Jianguo Wu
  • , Long Cheng
  • , Suyun Niu
  • , Zhiqiang Wang
  • , Mengyuan Zhu
  • , Jingyan Zhang
  • , Shouguo Wang*
  • , Wei Wang*
  • *此作品的通讯作者
  • Beijing University of Chemical Technology
  • CAS - Institute of Geology and Geophysics
  • Chinese Academy of Sciences
  • Beijing Hangxing Machinery Manufacture
  • Beijing Smart-Chip Microelectronics Technology Co. Ltd.
  • University of Science and Technology Beijing

科研成果: 期刊稿件文章同行评审

摘要

The morphology manipulation of nanomaterials by ion irradiation builds a way to precisely control physicochemical properties. Under the continuous irradiation of low energy Ga+, Ne+, and He+ ions, an ion compaction effect has been found in hollow FePt nanochains with ultrathin shell that the volumes of the nanochains are gradually compacted by ions. The deep learning algorithm has been successfully applied to automatically and precisely measure average sizes of spheres in hollow FePt nanochains. The compaction under ion irradiation is very fast in the very early period and then proceeds to a slow region. The compaction rates in both regions are linearly fitted and all the values are in the order of 10−17 to 10−14 cm2/ion. Ion species and ion current have effect on the compaction rate. For example, the compaction rate of Ga+ ions is larger than those of Ne+ and He+ ions under an identical current, while irradiation with larger current can compact nanochains faster. The ion compaction effect originates from the local shear deformation caused by the interaction between incident ions and the electrons of Fe and Pt atoms in the ultrathin shell. With continuous irradiation, the crystalline clusters of FePt nanchains firstly grow larger and then become amorphous. The ion compaction effect can be applied to tune the size and crystal structure of hollow structures with a precise rate by choosing appropriate ion species and current. [Figure not available: see fulltext.]

源语言英语
页(从-至)9309-9318
页数10
期刊Nano Research
15
10
DOI
出版状态已出版 - 10月 2022

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