Nano-Scale Tensile Testing and Sample Preparation Techniques for Silicon Nanowires
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概要
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In this paper, we describe an experimental technique to achieve a highly reliable characterization of the mechanical properties of silicon (Si) nanowires (NWs). A reusable on-chip Si device consisting of comb-drive electrostatic actuator for generating tensile force and capacitive sensors for measuring tensile force and displacement was designed and developed for quasi-static tensile test of Si NWs. The combination of focused ion beam (FIB) fabrication, FIB-assisted chemical vapor deposition, and probe manipulation enabled us to directly fabricate the NWs on the device. This sampling technique led to high yielding percentage of nano-scale tensile testing. The NWs were made from 200-nm-thick Si membranes that were produced by using silicon-on-nothing membrane fabrication technique. Several Si NWs were annealed at 700 °C in ultrahigh vacuum (UHV) for 5 min in order to examine the influence of annealing on the mechanical characteristics. The mean Young's modulus for nonannealed NWs was 129.1\pm 10.1 GPa. After UHV annealing, the mean value was improved to be 168.1\pm 1.3 GPa, comparable to the ideal value for Si(001)[110]. The annealing process gave rise to improving the Young's modulus, whereas it degraded the strength. Transmission electron microscopy suggested that recrystallization and gallium nanoclusters formation by annealing would have changed the mechanical characteristics.
- 2013-11-25
著者
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Inoue Shozo
Division Of Cardiology Department Of Medicine Kawasaki Medical School
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Namazu Takahiro
Division Of Mechanical System Department Of Mechanical And System Engineering Graduate School Of Eng
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Naito Muneyuki
Department Of Chemistry Konan University
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Sudoh Koichi
The Institute of Science and Industrial Research, Osaka University
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Inoue Shozo
Division of Mechanical Systems, Department of Mechanical and Systems Engineering, University of Hyogo, Himeji, Hyogo 671-2201, Japan
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Fujii Tatsuya
Division of Mechanical Systems, Department of Mechanical and Systems Engineering, University of Hyogo, Himeji, Hyogo 671-2201, Japan
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Sakakihara Shouichi
The Institute of Scientific and Industrial Research, Osaka University, Ibaraki, Osaka 567-0047, Japan
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Naito Muneyuki
Department of Chemistry, Konan University, Kobe 658-8501, Japan
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