| Literature DB >> 30116687 |
Santhana Eswara1, Jean-Nicolas Audinot1, Brahime El Adib2, Maël Guennou2, Tom Wirtz1, Patrick Philipp1.
Abstract
The mechanical, structural, electronic and magnetic properties ofEntities:
Keywords: Raman; carbon nanotubes; helium ion microscope; ion irradiation; simulations
Year: 2018 PMID: 30116687 PMCID: PMC6071685 DOI: 10.3762/bjnano.9.186
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Raman spectra of multiwalled carbon nanotubes after irradiation with different fluences of a) 25 keV He+, and b) 25 keV Ne+ ions. A laser with a wavelength of 532 nm was used. All the spectra (except the one pointed out) were obtained on suspended free-standing MWCNTs.
Figure 2a) Ratio of intensities of D to G band as a function of fluence for 25 keV He and Ne irradiation, and b) full width at half maximum of the G band peak as a function of fluence for 25 keV He and Ne irradiation.
Figure 3TEM images and Raman spectra after: (A–C) 25 keV He+ irradiation with a fluence of 1018 ions/cm2 (D–F) 25 keV Ne+ irradiation with a fluence of 1017 ions/cm2. While the thinner areas in both cases (A, D) appear to be relatively less damaged due to ion irradiation, the thicker sample areas (B, E) display diffuse contrast characteristic of partial amorphization, with most damage evident for the Ne+ irradiation. The arrows in (D) point to larger structures formed after ion irradiation. Plausible explanations are either by unzipping or other mechanisms of damage formation of MWCNT due to Ne+ irradiation. The structural features observed in these TEM images correlate very well with corresponding Raman spectra (C, F). In the deconvoluted spectra, Lorentz functions in cyan denote the D, G and D’ peaks while the Gaussian contributions from highly disordered areas are coloured in red.
Figure 4Nuclear and electronic energy loss as a function of sample thickness for a) He+ and b) Ne+ irradiation of suspended carbon.
Figure 5Sputter yield a) at the top, and b) at the bottom of the sample as a function of fluence for Ne irradiation of carbon samples of different thicknesses of 10–200 nm.
Backscatter yield averaged over a fluence of 1018 ions/cm2 for carbon film irradiation by 25 keV He+ and Ne+ irradiation.
| Thickness of carbon film (nm) | Backscatter yield – He | Backscatter yield – Ne |
| 10 | 3.0 × 10−4 | 1.1 × 10−5 |
| 30 | 1.2 × 10−3 | 1.9 × 10−5 |
| 100 | 2.6 × 10−3 | 2.8 × 10−5 |
Figure 6Backscatter yield as a function of gold thickness for He and Ne irradiation of a 30 nm carbon film deposited onto a gold grid. Results have been obtained by SDTRIMSP.
Figure 7Displacements into the carbon layer normalised to incident ion as a function of gold thickness for He and Ne irradiation of a 30 nm carbon film deposited onto a gold grid. Results were obtained by SDTRIMSP.
Figure 8Schematic illustration of the sample configuration and the sequence of techniques used in this investigation: a) deposition of MWCNTs in a perforated Au TEM grid, b) irradiation with He+ or Ne+ ions with a fluence of 1014–1018 ions/cm2, c) Raman spectroscopy in the irradiated area with a 532 nm laser, and d) TEM analyses in the irradiated area.
Experimental conditions for He+ and Ne+ irradiation on the HIM. Irradiation time is calculated based on primary ion current and changes of the latter during ion irradiation.
| Fluence (ions/cm2) | ||||||
| 1014 | 1015 | 1016 | 1017 | 1018 | ||
| He | Current (pA) | 15 | 15 | 15 | 45 | 45 |
| Crater size (µm2) | 60 × 60 | 60 × 60 | 60 × 60 | 40 × 40 | 40 × 40 | |
| Ne | Current (pA) | 20 | 20 | 20 | 40 | |
| Crater size (µm2) | 60 × 60 | 60 × 60 | 60 × 60 | 40 × 40 | ||