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PhD Defense of Quang Chieu BUI

Published on May 25, 2022
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PhD Defense June 13, 2022 | Access map
Defense of doctoral thesis of Quang Chieu BUI, for the  University  Grenoble Alps, speciality  " NANO ELECTRONIC & NANOTECHNOLOGIES ", entitled:
 
M001 Room  PHELMA / MINATEC
3 rue Parvis Louis Néel 38016 GRENOBLE Cedex 1

Development of ZnO thin films and nanowires by Pulsed-Liquid Injection Metal-Organic Chemical Vapor Deposition for piezoelectric applications

Quang Chieu BUI

Quang Chieu BUI

Monday, June 13, 2022 at 9:30am
 
Keywords:
ZnO,MOCVD,Piezoelectric,Nanostructure,Polarity

Abstract:
Zinc Oxide (ZnO) is a very interesting sustainable material for piezoelectric applications as a biocompatible semiconductor composed of abundant elements. However, the piezoelectric efficiency of ZnO strongly depends on its morphological, structural and electrical properties. Interestingly, the growth conditions used during the pulsed-liquid injection metal-organic chemical vapor deposition (PLI-MOCVD) process can largely tune the morphological, structural, electrical and piezoelectric properties of ZnO deposits, but their correlations have not been explored so far. The objective of this thesis is to understand and control the key factors driving the ZnO formation by PLI-MOCVD and enhancing its piezoelectric performance. The growth temperature, reactant flow rates, and the nature of the substrate during the PLI-MOCVD process are optimized to study their effects on the growth of ZnO thin films and nanowires as well as on their properties.
By increasing the growth temperature from 400 to 750°C while fixing all other growth parameters, the morphology of ZnO deposited on Si substrates is changed from thin films to nanowires. This morphology transition is accompanied with the improvement of the c-axis orientation, piezoelectric coefficient and Zn-polar uniformity. The post-annealing at high temperature under O2 atmosphere performed on ZnO thin films also leads to higher c-axis orientation, piezoelectric coefficient and Zn-polar uniformity. The flow rate variation at 500 °C results in the formation of thin films with different morphologies and polarity distribution. On these thin films, the difference in properties and piezoelectric efficiency between Zn- and O-polarity domains are revealed. In contrast, the flow rate variation at 700 °C results in the formation of nanowires with different lengths and diameters. All nanowires exhibit the Zn-polarity. The correlation of the piezoelectric efficiency and the nanowire geometry is also presented. In addition, the integration of the AZO layer as a bottom transparent electrode leads to further increasing the piezoelectric efficiency of ZnO nanowires while opening some perspectives towards the fabrication of visible blind piezoelectric devices containing only sustainable materials. These results eventually demonstrate the great flexibility of the PLI-MOCVD system to grow ZnO with different morphologies and properties for piezoelectric devices.

Membres du Jury :
  • Vincent SALLET, RESEARCHER-CNRS : Reviewer
  • Jesus ZUNIGA-PEREZ, RESEARCH DIRECTOR - CNRS : Reviewer
  • Noëlle GOGNEAU, RESEARCH DIRECTOR- CNRS : Examiner
  • Daniel ALQUIER, PROFESSOR of UNIVERSITIES - University of Tours : Examiner
  • Ahmad BSIESY,  PROFESSOR of UNIVERSITIES - Grenoble Alps University : Examiner
  • Gustavo ARDILA RODRIGUEZ ,  ASSOCIATE PROFESSOR - Grenoble Alps University : Supervisor
  • Vincent  CONSONNI, RESEACHER - CNRS : CoSupervisor
  • Bassem SALEM, RESEARCHER - CNRS : CoSupervisor

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Partenaires

Thesis prepared in the laboratory  IMEP-LaHC (Institut de Microélectronique, Electromagnétisme et Photonique - Laboratoire d'Hyperfréquences et de Caractérisation) supervised by Gustavo ARDILA RODRIGUEZ, supervisor.
 

Date of update May 31, 2022

Contact

Gustavo ARDILA RODRIGUEZ
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