Phase Transformation Driven by Oxygen Vacancy Redistribution as the Mechanism of Ferroelectric Hf0.5Zr0.5O2 Fatigue

Author:

Zhang Zimeng1ORCID,Craig Isaac234,Zhou Tao5,Holt Martin5,Flores Raul24,Sheridan Evan24,Inzani Katherine6,Huang Xiaoxi1,Nag Joyeeta7,Prasad Bhagwati8,Griffin Sinéad M.24,Ramesh Ramamoorthy191011ORCID

Affiliation:

1. Department of Materials Science and Engineering University of California Berkeley California 94720 USA

2. Molecular Foundry Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

3. Department of Chemistry University of California Berkeley California 94720 USA

4. Materials Sciences Division Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

5. Center for Nanoscale Materials Argonne National Laboratory Lemont IL 60439 USA

6. School of Chemistry University of Nottingham Nottingham NG7 2RD UK

7. Western Digital Research Center Western Digital Corporation San Jose CA 95119 USA

8. Department of Materials Engineering Indian Institute of Science Bangalore Karnataka 560012 India

9. Department of Physics University of California Berkeley CA 94720 USA

10. Department of Materials Science and Nanoengineering Rice University Houston TX 77005 USA

11. Department of Physics Rice University Houston TX 77005 USA

Abstract

AbstractAs a promising candidate for nonvolatile memory devices, the hafnia‐based ferroelectric system has recently been a hot research topic. Although significant progress has been made over the past decade, the endurance problem is still an obstacle to its final application. In perovskite‐based ferroelectrics, such as the well‐studied Pb[ZrxTi1−x]O3 (PZT) family, polarization fatigue has been discussed within the framework of the interaction of charged defects (such as oxygen vacancies) with the moving domains during the switching process, particularly at the electrode‐ferroelectric interface. Armed with this background, a hypothesis is set out to test that a similar mechanism can be in play with the hafnia‐based ferroelectrics. The conducting perovskite La‐Sr‐Mn‐O is used as the contact electrode to create La0.67Sr0.33MnO3 / Hf0.5Zr0.5O(HZO)/ La0.67Sr0.33MnO3 capacitor structures deposited on SrTiO3‐Si substrates. Nanoscale X‐ray diffraction is performed on single capacitors, and a structural phase transition from polar o‐phase toward non‐polar m‐phase is demonstrated during the bipolar switching process. The energy landscape of multiphase HZO has been calculated at varying oxygen vacancy concentrations. Based on both theoretical and experimental results, it is found that a polar to non‐polar phase transformation caused by oxygen vacancy redistribution during electric cycling is a likely explanation for fatigue in HZO.

Publisher

Wiley

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