English

Strain fluctuations unlock ferroelectricity in wurtzites

Materials Science 2024-11-15 v3

Abstract

Ferroelectrics are of practical interest for non-volatile data storage due to their reorientable, crystallographically defined polarization. Yet efforts to integrate conventional ferroelectrics into ultrathin memories have been frustrated by film-thickness limitations, which impede polarization reversal under low applied voltage. Wurtzite materials, including magnesium-substituted zinc oxide (Zn,Mg)O, have been shown to exhibit scalable ferroelectricity as thin films. In this work, we explain the origins of ferroelectricity in (Zn,Mg)O, showing that large strain fluctuations emerge locally in (Zn,Mg)O and can reduce local barriers to ferroelectric switching by more than 40%. We provide concurrent experimental and computational evidence of these effects by demonstrating polarization switching in ZnO/(Zn,Mg)O/ZnO heterostructures featuring built-in interfacial strain gradients. These results open up an avenue to develop scalable ferroelectrics by controlling strain fluctuations atomistically.

Keywords

Cite

@article{arxiv.2311.05413,
  title  = {Strain fluctuations unlock ferroelectricity in wurtzites},
  author = {Steven M. Baksa and Simon Gelin and Seda Oturak and Robert Jackson Spurling and Alireza Sepehrinezhad and Leonard Jacques and Susan E. Trolier-McKinstry and Adri C. T. van Duin and Jon-Paul Maria and Andrew M. Rappe and Ismaila Dabo},
  journal= {arXiv preprint arXiv:2311.05413},
  year   = {2024}
}

Comments

12 pages, 5 figures