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Beilstein J. Nanotechnol. 2024, 15, 704–712, doi:10.3762/bjnano.15.58
Figure 1: a) X-ray diffraction pattern of β-Ga2O3 NWs on silicon substrate. b) TEM image of a β-Ga2O3 NW with...
Figure 2: a) SEM image of the as-grown Ga2O3 NWs on silicon substrate; b) an individual NW with trapezoid cro...
Figure 3: SEM image of a NW fixed at one end and a closely positioned probe tip: a) without applied AC and DC...
Figure 4: Elastic modulus plotted with respect to the width of Ga2O3 NWs: a) obtained via SEM resonance tests...
Figure 5: a) SEM image of Ga2O3 NW suspended over the inverted pyramid with both ends fixed. b) AFM topograph...
Figure 6: Schematic representation of the mechanical resonance and three-point bending tests: a) A NW suspend...
Beilstein J. Nanotechnol. 2024, 15, 435–446, doi:10.3762/bjnano.15.39
Figure 1: Single Ag NW suspended over several holes etched in a Si substrate.
Figure 2: Heating schemes used for heat treatment of Ag NWs. TR stands for room temperature. Δt1 = 10 min is ...
Figure 3: a) Ag NWs deformed after deposition onto a Si substrate. b) Splitting of the Ag NWs at the bending ...
Figure 4: : Necking and splitting of Ag NWs in the heating scheme 1 after treatment at 375 °C.
Figure 5: SEM images of Ag NWs after a single-step heat treatment (heating scheme 2) at 400 °C. Fragmentation...
Figure 6: Average values of splits per length unit in adhered and suspended parts for both heating schemes.
Figure 7: a) TEM images of Ag NWs after single-step (scheme 2) heat-treatment. b) Inset to one of the segment...
Figure 8: Schematic representation of the deformation and fragmentation of NWs during the heat treatment.
Figure 9: Molecular dynamics model of the NW: (a) initial conditions, (b) results of the compression cycle, (...