Imaging the mechanical properties of nanowire arrays
Author:
Ma Tianran1, Fahrbach Michael1, Xu Jiushuai1, Anang Frank Eric Boye1, Vergin Maximilian1, Meierhofer Florian1, Brand Uwe2, Waag Andreas1, Peiner Erwin1
Affiliation:
1. Institute of Semiconductor Technology (IHT) , 26527 Technische Universität Braunschweig , Braunschweig , Germany 2. Physikalisch-Technische Bundesanstalt (PTB) , Braunschweig , Germany
Abstract
Abstract
Dimensional and contact resonance (CR) images of nanowire (NW) arrays (NWAs) are measured using our newly developed microprobe CR imaging (CRI) setup. Then a reference method is employed to calculate the indentation modulus of NWs (M
i,NW
) representing the elasticity of NWs, by measuring NWAs and reference samples at the same static probing force. Furthermore, topography is imaged in combination with CR and M
i,NW
separately by software, in which the z values indicate the topography of the NWs and the color bars show its CR or M
i,NW
. Then NWs’ topography relation to M
i,NW
is visualized. As typical examples, 3D imaging of topography and measurement of M
i,NW
is performed with Si<111> pillar arrays as well as Cu and ZnO NWAs. The novel method enables fast mechanical performance measurements of large-scale vertically-aligned NWAs without releasing them from their respective substrates. For instance, the diameter and pitch of the Si<111> pillars and the diameter of the Cu NWAs are in good agreement with the values measured by scanning electron microscopy (SEM). The position of ZnO NWs bunches grown at arbitrary sites on silicon can be identified with the help of combined topography and indentation modulus images. Furthermore, M
i,NW
measured by our homemade CRI setup agrees well with bulk values. Differences between the measured M
i,NW
and bulk M
i
values may be related to a size effect in NW elasticity.
Funder
Niedersächsisches Ministerium für Wissenschaft und Kultur Deutsche Forschungsgemeinschaft European Metrology Programme for Innovation and Research Bundesministerium für Bildung und Forschung China Scholarship Council
Publisher
Walter de Gruyter GmbH
Reference37 articles.
1. S. Raman, R. S. A, and S. M, “Advances in silicon nanowire applications in energy generation, storage, sensing, and electronics: a review,” Nanotechnology, vol. 34, no. 18, p. 182001, 2023. https://doi.org/10.1088/1361-6528/acb320. 2. S. Mokkapati and C. Jagadish, Eds., Nanowires for Energy Applications, vol. 98, 1st ed. US, Academic Press, 2018. 3. C. J. Murphy and N. R. Jana, “Controlling the aspect ratio of inorganic nanorods and nanowires,” Adv. Mater., vol. 14, no. 1, pp. 80–82, 2002. https://doi.org/10.1002/1521-4095(20020104)14:1<80::aid-adma80>3.0.co;2-#. 4. J. Kim, J. Cui, and K. A. Fichthorn, “Solution-phase growth of Cu nanowires with aspect ratios greater than 1000: multiscale theory,” ACS Nano, vol. 15, no. 11, pp. 18279–18288, 2021. https://doi.org/10.1021/acsnano.1c07425. 5. A. G. N. Sofiah, M. Samykano, K. Kadirgama, R. Mohan, and N. Lah, “Metallic nanowires: mechanical properties – theory and experiment,” Appl. Mater. Today, vol. 11, pp. 320–337, 2018, https://doi.org/10.1016/j.apmt.2018.03.004.
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