Issue 13, 2022

Electromechanical conversion efficiency of GaN NWs: critical influence of the NW stiffness, the Schottky nano-contact and the surface charge effects

Abstract

The piezoelectric nanowires (NWs) are considered as promising nanomaterials to develop high-efficient piezoelectric generators. Establishing the relationship between their characteristics and their piezoelectric conversion properties is now essential to further improve the devices. However, due to their nanoscale dimensions, the NWs are characterized by new properties that are challenging to investigate. Here, we use an advanced nano-characterization tool derived from AFM to quantify the piezo-conversion properties of NWs axially compressed with a well-controlled applied force. This unique technique allows to establish the direct relation between the output signal generation and the NW stiffness and to quantify the electromechanical coupling coefficient of GaN NWs, which can reach up to 43.4%. We highlight that this coefficient is affected by the formation of the Schottky nano-contact harvesting the piezo-generated energy, and is extremely sensitive to the surface charge effects, strongly pronounced in sub-100 nm wide GaN NWs. These results constitute a new building block in the improvement of NW-based nanogenerator devices.

Graphical abstract: Electromechanical conversion efficiency of GaN NWs: critical influence of the NW stiffness, the Schottky nano-contact and the surface charge effects

Supplementary files

Article information

Article type
Paper
Submitted
29 Nov 2021
Accepted
11 Feb 2022
First published
17 Mar 2022
This article is Open Access
Creative Commons BY-NC license

Nanoscale, 2022,14, 4965-4976

Electromechanical conversion efficiency of GaN NWs: critical influence of the NW stiffness, the Schottky nano-contact and the surface charge effects

N. Gogneau, P. Chrétien, T. Sodhi, L. Couraud, L. Leroy, L. Travers, J. Harmand, F. H. Julien, M. Tchernycheva and F. Houzé, Nanoscale, 2022, 14, 4965 DOI: 10.1039/D1NR07863A

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