Infrared nano-spectroscopy of ferroelastic domain walls in hybrid improper ferroelectric Ca3Ti2O7

Abstract

Ferroic materials are well known to exhibit heterogeneity in the form of domain walls. Understanding the properties of these boundaries is crucial for controlling functionality with external stimuli and for realizing their potential for ultra-low power memory and logic devices as well as novel computing architectures. In this work, we employ synchrotron-based near-field infrared nano-spectroscopy to reveal the vibrational properties of ferroelastic (90$${}^{\circ }$$ ∘ ferroelectric) domain walls in the hybrid improper ferroelectric Ca$${}_{3}$$ 3 Ti$${}_{2}$$ 2 O$${}_{7}$$ 7 . By locally mapping the Ti-O stretching and Ti-O-Ti bending modes, we reveal how structural order parameters rotate across a wall. Thus, we link observed near-field amplitude changes to underlying structural modulations and test ferroelectric switching models against real space measurements of local structure. This initiative opens the door to broadband infrared nano-imaging of heterogeneity in ferroics.

Document Details

Document Type
Pub Defense Publication
Publication Date
Nov 20, 2019
Source ID
10.1038/s41467-019-13066-9

Entities

People

  • Bin Gao
  • Choongjae Won
  • Craig J Fennie
  • Elizabeth Nowadnick
  • G. L. Carr
  • H. A. Bechtel
  • J. K. Kirkland
  • Janice L Musfeldt
  • Kevin Smith
  • M. B. Raschke
  • Michael C Martin
  • Nathan C Harms
  • Omar Khatib
  • S. Fan
  • S. J. Lim
  • S. N. Neal
  • S.-w. Cheong

Tags

Fields of Study

  • Materials science
  • Physics

Readers

  • Materials Science and Engineering.
  • Nanoscale Plasmonic Nanotechnology
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.

Technology Areas

  • Space