| Literature DB >> 28144520 |
Alla I Vorobjova1, Dmitry L Shimanovich1, Kazimir I Yanushkevich2, Sergej L Prischepa1, Elena A Outkina1.
Abstract
The comparative analysis of the electrochemical deposition of Ni and Ni-Fe nanowires (NWs) into ordered porousEntities:
Keywords: electrochemical deposition; nanowire; porous alumina template; specific magnetization
Year: 2016 PMID: 28144520 PMCID: PMC5238694 DOI: 10.3762/bjnano.7.163
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1SEM top view of the obtained porous alumina oxide at different magnification a) 20000×, b) 100000×.
Characteristics of electrolyte solutions used for galvanostatic dc electrodeposition of Ni and Ni–Fe.
| electrolyte solution | pH | compounds | concentration, g·L−1 | function |
| Ni (no.1) | 5.2 | NiSO4·6H2O | 140 | nickel source |
| NiCl2·6H2O | 30 | nickel source | ||
| H3BO3 | 25 | stabilizer | ||
| Na2SO4 | 6 | preventer | ||
| NaOH | to adjust pH | |||
| Ni–Fe (no. 2) | 3.0–3.5 | NiSO4·7H2O | 90 | nickel source |
| FeSO4·6H2O | 13.5 | iron source | ||
| Н3BO3 | 25 | stabilizer | ||
| CuSO4 | 2 | preventer | ||
| NaOH | to adjust pH | |||
Figure 2Deposited mass of Ni and of Ni–Fe as a function of the deposition time. Alumina thickness (HPA) is 45 μm; pore diameter is 50 ± 5 nm. Black diamonds: Ni from solution no. 1; red squares: Ni–Fe from solution no.2.
Figure 3SEM cross-sectional views of the alumina template after galvanostatic dc deposition of Ni–Fe (a, b, c) and Ni (d) NW arrays under the following conditions: current density 3 mA·cm−2, deposition duration 10 min (a, d), 90 min (b) and 150 min (c). In the insets: the top-view SEM images of the template (red frame) and the enlarged image of the deposition front depending on deposition duration.
The results of the galvanostatic dc deposition of Ni and Ni–Fe at a current density of 3 mA·cm-2 and varying HPA.
| no. | type | ||||||
| 1 | Ni | 33.3 | 10.4 | 10 | 0.60 | 1.04 | 0.060 |
| 2 | Ni | 40 | — | 60 | 3.12 | — | 0.052 |
| 3 | Ni | 65 | — | 120 | 4.29 | — | 0.036 |
| 4 | Ni–Fe | 27.8 | 2.4 | 10 | 0.30 | 0.24 | 0.030 |
| 5 | Ni–Fe | 50 | — | 60 | 1.83 | — | 0.028 |
| 6 | Ni–Fe | 29.1 | 25.2 | 90 | 2.52 | 0.28 | 0.028 |
| 7 | Ni–Fe | 65 | — | 90 | 2.56 | — | 0.028 |
| 8 | Ni–Fe | 88.3 | 21.6 | 150 | 2.67 | 0.14 | 0.018 |
Figure 4XRD pattern for Ni NWs in alumina template with HPA of 65 μm and a current density of 3 mA·cm−2, deposition duration 120 min.
Figure 5XRD pattern of Ni–Fe NWs inside the alumina template with HPA of 50 μm and a current density 3 mA·cm−2, deposition duration 90 min.
The main characteristics of XRD patterns for Ni and Ni-Fe in Al2O3.
| Ni–Fe | Ni | |||||
| no. | crystal orientation | 2θ, ° | intensity, % | crystal orientation | 2θ, ° | intensity, % |
| 1 | Ni–Fe(111) + Al2O3 | 43.67 | 100 | Ni(111) + Al2O3 | 44.45 | 11 |
| 2 | Ni–Fe(200) + Al2O3 | 50.90 | 29 | Ni(200) + Al2O3 | 51.76 | 1.3 |
| 3 | Ni–Fe(220) + Al2O3 | 74.90 | 9 | Ni(220) + Al2O3 | 76.53 | 100 |
| 4 | Ni–Fe(311) + Al2O3 | 90.10 | 7 | Ni(311) + Al2O3 | 89.80 | 0 |
The crystallite sizes for Ni and Ni–Fe NWs in the alumina template.
| sample | Ni, NWs | Ni–Fe, NWs | ||||||
| orientation | 111 | 200 | 220 | 311 | 111 | 200 | 220 | 311 |
| 11 | 1.3 | 100 | — | 100 | 29 | 9 | 7 | |
| 17.9 | 18.3 | 35.3 | — | 17.9 | 9.1 | 6.9 | 7.8 | |
Figure 6Magnetization as a function of the temperature for Ni NWs fabricated in the alumina template (HPA = 65 μm) at a current density of 3 mA·cm−2, the deposition duration was 90 min. The inset is the σ2(T) dependence. The dashed line represents a linear fit to the experimental data. The arrow indicates the evaluated TC.
Figure 7Magnetization as a function of the temperature for Ni–Fe NWs fabricated in the alumina template (a) with HPA = 65 μm at a current density of 3 mA·cm−2, the deposition duration was 90 min; (b) the same and the inset is the σ2(T) dependence. The dashed line represents a linear fit to the experimental data. The arrow indicates the evaluated TC.