Emergence of room-temperature ferroelectricity at reduced dimensions

Abstract
The enhancement of the functional properties of materials at reduced dimensions is crucial for continuous advancements in nanoelectronic applications. Here, we report that the scale reduction leads to the emergence of an important functional property, ferroelectricity, challenging the long-standing notion that ferroelectricity is inevitably suppressed at the scale of a few nanometers. A combination of theoretical calculations, electrical measurements, and structural analyses provides evidence of room-temperature ferroelectricity in strain-free epitaxial nanometer-thick films of otherwise nonferroelectric strontium titanate (SrTiO3). We show that electrically induced alignment of naturally existing polar nanoregions is responsible for the appearance of a stable net ferroelectric polarization in these films. This finding can be useful for the development of low-dimensional material systems with enhanced functional properties relevant to emerging nanoelectronic devices.
Funding Information
  • National Science Foundation (NSF)
  • NSF (DMR-1410714, DMR-1006136)
  • National Science Foundation (DMR-1121053)
  • National Research Foundation of Korea (2013M3A6B1078872)
  • National Research Foundation (NRF) of Korea (2015R1A2A2A01007904)
  • Designing Materials to Revolutionize and Engineer our Future (DMREF) (DMR-1234096)
  • Materials Research Science and Engineering Center (MRSEC) (DMR-1420645)
  • NSF-MRSEC Center for Nanoscale Science (DMR-1420620)
  • U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (DE-SC0012575)
  • National Energy Research Scientific Computing Center (NERSC)
  • DOE Office of Science
  • Asian Office of Aerospace Research and Development (AOARD) (FA2386-15-1-4046)
  • Center for Creative Industrial Materials (F14SN02D1707)