Ion Track Formation via Electric-Field-Enhanced Energy Deposition
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arXiv
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| Main Authors: | , , , , , , |
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| Format: | Preprint |
| Published: |
2025
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| _version_ | 1866918237355114496 |
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| author | Ge, Zikang Hu, Jinhao Peng, Shengyuan Kang, Wei Shen, Xiaofei Xie, Yanbo Xue, Jianming |
| author_facet | Ge, Zikang Hu, Jinhao Peng, Shengyuan Kang, Wei Shen, Xiaofei Xie, Yanbo Xue, Jianming |
| contents | High-energy ion irradiation deposits extreme energy in a narrow range (1-10 nm) along ion trajectories in solid through electronic energy loss, producing unique irradiation effects such as ion tracks. However, intrinsic velocity effects impose an upper limit on electronic energy loss that cannot be overcome by adjusting irradiation parameters. We introduce a method using electric fields during irradiation to enhance nanoscale energy deposition by accelerating ion-excited electrons within sub-picosecond timescales.Our extended thermal spike model quantitatively describes this enhancement and predicts a significant reduction in the electronic energy loss required for ion track formation in amorphous SiO2, which is in excellent agreement with experimental observations. This work provides a new approach to control energy deposition during irradiation and boosts the wide application of ion tracks in material modification and nanoengineering to much broader extents. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2506_12884 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | Ion Track Formation via Electric-Field-Enhanced Energy Deposition Ge, Zikang Hu, Jinhao Peng, Shengyuan Kang, Wei Shen, Xiaofei Xie, Yanbo Xue, Jianming Applied Physics Mesoscale and Nanoscale Physics High-energy ion irradiation deposits extreme energy in a narrow range (1-10 nm) along ion trajectories in solid through electronic energy loss, producing unique irradiation effects such as ion tracks. However, intrinsic velocity effects impose an upper limit on electronic energy loss that cannot be overcome by adjusting irradiation parameters. We introduce a method using electric fields during irradiation to enhance nanoscale energy deposition by accelerating ion-excited electrons within sub-picosecond timescales.Our extended thermal spike model quantitatively describes this enhancement and predicts a significant reduction in the electronic energy loss required for ion track formation in amorphous SiO2, which is in excellent agreement with experimental observations. This work provides a new approach to control energy deposition during irradiation and boosts the wide application of ion tracks in material modification and nanoengineering to much broader extents. |
| title | Ion Track Formation via Electric-Field-Enhanced Energy Deposition |
| topic | Applied Physics Mesoscale and Nanoscale Physics |
| url | https://arxiv.org/abs/2506.12884 |