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  5. Strain-Gated Piezotronic Transistors Based on Vertical Zinc Oxide Nanowires

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Article
en
2012

Strain-Gated Piezotronic Transistors Based on Vertical Zinc Oxide Nanowires

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0 Files

en
2012
Vol 6 (5)
Vol. 6
DOI: 10.1021/nn301277m

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Zhong Lin Wang
Zhong Lin Wang

Beijing Institute of Technology

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Weihua Han
Yusheng Zhou
Yan Zhang
+5 more

Abstract

Strain-gated piezotronic transistors have been fabricated using vertically aligned ZnO nanowires (NWs), which were grown on GaN/sapphire substrates using a vapor-liquid-solid process. The gate electrode of the transistor is replaced by the internal crystal potential generated by strain, and the control over the transported current is at the interface between the nanowire and the top or bottom electrode. The current-voltage characteristics of the devices were studied using conductive atomic force microscopy, and the results show that the current flowing through the ZnO NWs can be tuned/gated by the mechanical force applied to the NWs. This phenomenon was attributed to the piezoelectric tuning of the Schottky barrier at the Au-ZnO junction, known as the piezotronic effect. Our study demonstrates the possibility of using Au droplet capped ZnO NWs as a transistor array for mapping local strain. More importantly, our design gives the possibility of fabricating an array of transistors using individual vertical nanowires that can be controlled independently by applying mechanical force/pressure over the top. Such a structure is likely to have important applications in high-resolution mapping of strain/force/pressure.

How to cite this publication

Weihua Han, Yusheng Zhou, Yan Zhang, Cheng–Ying Chen, Long Lin, Xue Wang, Sihong Wang, Zhong Lin Wang (2012). Strain-Gated Piezotronic Transistors Based on Vertical Zinc Oxide Nanowires. , 6(5), DOI: https://doi.org/10.1021/nn301277m.

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Publication Details

Type

Article

Year

2012

Authors

8

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1021/nn301277m

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