Perspectives and progress on wurtzite ferroelectrics: Synthesis, characterization, theory, and device applications

Author:

Casamento Joseph1ORCID,Baksa Steven M.1ORCID,Behrendt Drew2ORCID,Calderon Sebastian3ORCID,Goodling Devin1,Hayden John1ORCID,He Fan1ORCID,Jacques Leonard4ORCID,Lee Seung Hoon1ORCID,Smith Walter5ORCID,Suceava Albert1ORCID,Tran Quyen1ORCID,Zheng Xiaojun1ORCID,Zu Rui1ORCID,Beechem Thomas5ORCID,Dabo Ismaila1ORCID,Dickey Elizabeth C.3ORCID,Esteves Giovanni6ORCID,Gopalan Venkatraman1ORCID,Henry Michael David6ORCID,Ihlefeld Jon F.7ORCID,Jackson Thomas N.1,Kalinin Sergei V.8ORCID,Kelley Kyle P.9ORCID,Liu Yongtao9ORCID,Rappe Andrew M.2ORCID,Redwing Joan1ORCID,Trolier-McKinstry Susan1ORCID,Maria Jon-Paul1

Affiliation:

1. Department of Materials Science and Engineering and Materials Research Institute, Pennsylvania State University 1 , University Park, Pennsylvania 16802, USA

2. Department of Chemistry, University of Pennsylvania 2 , Philadelphia, Pennsylvania 19104, USA

3. Department of Materials Science and Engineering, Carnegie Mellon University 3 , Pittsburgh, Pennsylvania 15213, USA

4. Department of Engineering Science and Mechanics and Materials Research Institute 4 , Pennsylvania State University University Park, Pennsylvania 16802, USA

5. School of Mechanical Engineering and Birck Nanotechnology Center, Purdue University 5 , Lafayette, Indiana 47907, USA

6. Microsystems Engineering, Science and Applications, Sandia National Laboratories 6 , Albuquerque, New Mexico 87123, USA

7. Department of Materials Science and Engineering, University of Virginia 7 , Charlottesville, Virginia 22904, USA

8. Materials Science and Engineering Department, University of Tennessee, Knoxville 8 , Knoxville, Tennessee 37916, USA

9. Center for Nanophase Materials Sciences, Oak Ridge National Laboratory 9 , Oak Ridge, Tennessee 37830, USA

Abstract

Wurtzite ferroelectrics are an emerging material class that expands the functionality and application space of wide bandgap semiconductors. Promising physical properties of binary wurtzite semiconductors include a large, reorientable spontaneous polarization, direct band gaps that span from the infrared to ultraviolet, large thermal conductivities and acoustic wave velocities, high mobility electron and hole channels, and low optical losses. The ability to reverse the polarization in ternary wurtzite semiconductors at room temperature enables memory and analog type functionality and quasi-phase matching in optical devices and boosts the ecosystem of wurtzite semiconductors, provided the appropriate combination of properties can be achieved for any given application. In this article, advances in the design, synthesis, and characterization of wurtzite ferroelectric materials and devices are discussed. Highlights include: the direct and quantitative observation of polarization reversal of ∼135 μC/cm2 charge in Al1−xBxN via electron microscopy, Al1−xBxN ferroelectric domain patterns poled down to 400 nm in width via scanning probe microscopy, and full polarization retention after over 1000 h of 200 °C baking and a 2× enhancement relative to ZnO in the nonlinear optical response of Zn1−xMgxO. The main tradeoffs, challenges, and opportunities in thin film deposition, heterostructure design and characterization, and device fabrication are overviewed.

Funder

Defense Advanced Research Projects Agency

U.S. Department of Energy

Publisher

AIP Publishing

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