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Title: | Granular metal-carbon nanocomposites as piezoresistive sensor films - Part 1: Experimental results and morphology |
Authors: | Schultes, Günter; Schmid-Engel, Hanna; Schwebke, Silvan; Werner, Ulf |
Publishers version: | https://doi.org/10.5194/jsss-7-1-2018 |
URI: | https://oa.tib.eu/renate/handle/123456789/11678 http://dx.doi.org/10.34657/10711 |
Issue Date: | 2018 |
Published in: | Journal of Sensors and Sensor Systems 7 (2018), Nr. 1 |
Journal: | Journal of Sensors and Sensor Systems |
Volume: | 7 |
Issue: | 1 |
Page Start: | 1 |
Page End: | 11 |
Publisher: | Göttingen : Copernicus Publ. |
Abstract: | We have produced granular films based on carbon and different transition metals by means of plasma deposition processes. Some of the films possess an increased strain sensitivity compared to metallic films. They respond to strain almost linearly with gauge factors of up to 30 if strained longitudinally, while in the transverse direction about half of the effect is still measured. In addition, the film's thermal coefficient of resistance is adjustable by the metal concentration. The influence of metal concentration was investigated for the elements Ni, Pd, Fe, Pt, W, and Cr, while the elements Co, Au, Ag, Al, Ti, and Cu were studied briefly. Only Ni and Pd have a pronounced strain sensitivity at 55- €±- €5- €at.- €% (atomic percent) of metal, among which Ni–C is far more stable. Two phases are identified by transmission electron microscopy and X-ray diffraction: metal-containing nanocolumns densely packed in a surrounding carbon phase. We differentiate three groups of metals, due to their respective affinity to carbon. It turns out that only nickel has the capability to bond and form a stable and closed encapsulation of GLC around each nanoparticle. In this structure, the electron transport is in part accomplished by tunneling processes across the basal planes of the graphitic encapsulation. Hence, we hold these tunneling processes responsible for the increased gauge factors of Ni–C composites. The other elements are unable to form graphitic encapsulations and thus do not exhibit elevated gauge factors. |
Keywords: | Carbon nanocomposite; Deposition process; Electron transport; Metal concentrations; Piezo-resistive sensors; Strain sensitivity; Thermal coefficient of resistance; Tunneling process |
Type: | article; Text |
Publishing status: | publishedVersion |
DDC: | 621.3 |
License: | CC BY 4.0 Unported |
Link to license: | https://creativecommons.org/licenses/by/4.0/ |
Appears in Collections: | Ingenieurwissenschaften |
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Schultes, Günter, Hanna Schmid-Engel, Silvan Schwebke and Ulf Werner, 2018. Granular metal-carbon nanocomposites as piezoresistive sensor films - Part 1: Experimental results and morphology. 2018. Göttingen : Copernicus Publ.
Schultes, G., Schmid-Engel, H., Schwebke, S. and Werner, U. (2018) “Granular metal-carbon nanocomposites as piezoresistive sensor films - Part 1: Experimental results and morphology.” Göttingen : Copernicus Publ. doi: https://doi.org/10.5194/jsss-7-1-2018.
Schultes G, Schmid-Engel H, Schwebke S, Werner U. Granular metal-carbon nanocomposites as piezoresistive sensor films - Part 1: Experimental results and morphology. Vol. 7. Göttingen : Copernicus Publ.; 2018.
Schultes, G., Schmid-Engel, H., Schwebke, S., & Werner, U. (2018). Granular metal-carbon nanocomposites as piezoresistive sensor films - Part 1: Experimental results and morphology (Version publishedVersion, Vol. 7). Version publishedVersion, Vol. 7. Göttingen : Copernicus Publ. https://doi.org/https://doi.org/10.5194/jsss-7-1-2018
Schultes G, Schmid-Engel H, Schwebke S, Werner U. Granular metal-carbon nanocomposites as piezoresistive sensor films - Part 1: Experimental results and morphology. 2018;7(1). doi:https://doi.org/10.5194/jsss-7-1-2018
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