Low-energy ion channeling in nanocubes

被引:0
作者
Shiva Choupanian
Wolfhard Möller
Martin Seyring
Carsten Ronning
机构
[1] Friedrich Schiller University Jena,Institute of Solid State Physics
[2] Helmholtz-Zentrum Dresden-Rossendorf,Otto Schott Institute of Materials Research
[3] Friedrich Schiller University Jena,undefined
来源
Nano Research | 2023年 / 16卷
关键词
ion nanostructure interaction; ion channeling; metallic nanoparticles; focused ion beam;
D O I
暂无
中图分类号
学科分类号
摘要
Focused ion beam (FIB) processing with low-energy ions has become a standard technique for the manipulation of nanostructures. Many underlying ion beam effects that deviate from conventional high-energy ion irradiation of bulk systems are considered today; however, ion channeling with its consequence of significant deeper penetration depth has been only theoretically investigated in this regime. We present here an experimental approach to determine the channeling of low-energy ions in crystalline nanoparticles by measuring the sputter yield derived from scanning electron microscopy (SEM) images taken after irradiation under various incident ion angles. Channeling maps of 30 and 20 keV Ga+ ions in Ag nanocubes have been identified and fit well with the theory. Indeed, channeling has a significant impact on the transport of energetic ions in crystals due to the large critical angle at low ion energies, thus being relevant for any FIB-application. Consequently, the obtained sputter yield clearly differs from amorphous materials; therefore, it is recommended not to rely only on, e.g., ion distribution depths predicted by standard Monte-Carlo (MC) algorithms for amorphous materials. [graphic not available: see fulltext]
引用
收藏
页码:1522 / 1526
页数:4
相关论文
共 223 条
[1]  
Tseng A A(2004)Recent developments in micromilling using focused ion beam technology J. Micromech. Microeng. 14 R15-R34
[2]  
Li P(2021)Recent advances in focused ion beam nanofabrication for nanostructures and devices: Fundamentals and applications Nanoscale 13 1529-1565
[3]  
Chen S Y(2007)Focused ion beam microscopy and micromachining MRS Bull. 32 389-399
[4]  
Dai H F(2010)Ion and electron irradiation-induced effects in nanostructured materials J. Appl. Phys. 107 071301-321
[5]  
Yang Z M(2015)Ion beam irradiation of nanostructures: Sputtering, dopant incorporation, and dynamic annealing Semicond. Sci. Technol. 10 033001-3940
[6]  
Chen Z Q(2018)Radiation damage in nanostructured materials Prog. Mater. Sci. 96 217-1553
[7]  
Wang Y S(2022)The disappearance and return of nanoparticles upon low energy ion irradiation Nanotechnology 33 035703-2138
[8]  
Chen Y Q(2013)Enhanced sputtering yields from single-ion impacts on gold nanorods Phys. Rev. Lett. 111 065504-33
[9]  
Peng W Q(2008)Enhanced sputtering from nanoparticles and thin films: Size effects Europhys. Lett. 82 26002-64
[10]  
Shan W B(2015)Sputter yield of curved surfaces Phys. Rev. B 91 165418-32