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Two-Dimensional Layered Oxide Structures Tailored by Self-Assembled Layer Stacking via Interfacial Strain

  • Wenrui Zhang
  • , Mingtao Li
  • , Aiping Chen
  • , Leigang Li
  • , Yuanyuan Zhu
  • , Zhenhai Xia
  • , Ping Lu
  • , Philippe Boullay
  • , Lijun Wu
  • , Yimei Zhu
  • , Judith L. MacManus-Driscoll
  • , Quanxi Jia
  • , Honghui Zhou
  • , Jagdish Narayan
  • , Xinghang Zhang
  • , Haiyan Wang
  • Texas A&M University
  • University of North Texas
  • Xi'an Jiaotong University
  • Los Alamos National Laboratory
  • Sandia National Laboratories, New Mexico
  • CRISMAT
  • Brookhaven National Laboratory Condensed Matter Physics and Materials Science Department
  • University of Cambridge
  • North Carolina State University
  • Purdue University

Research output: Contribution to journalArticlepeer-review

29 Scopus citations

Abstract

Study of layered complex oxides emerge as one of leading topics in fundamental materials science because of the strong interplay among intrinsic charge, spin, orbital, and lattice. As a fundamental basis of heteroepitaxial thin film growth, interfacial strain can be used to design materials that exhibit new phenomena beyond their conventional forms. Here, we report a strain-driven self-assembly of bismuth-based supercell (SC) with a two-dimensional (2D) layered structure. With combined experimental analysis and first-principles calculations, we investigated the full SC structure and elucidated the fundamental growth mechanism achieved by the strain-enabled self-assembled atomic layer stacking. The unique SC structure exhibits room-temperature ferroelectricity, enhanced magnetic responses, and a distinct optical bandgap from the conventional double perovskite structure. This study reveals the important role of interfacial strain modulation and atomic rearrangement in self-assembling a layered singe-phase multiferroic thin film, which opens up a promising avenue in the search for and design of novel 2D layered complex oxides with enormous promise.

Original languageEnglish
Pages (from-to)16845-16851
Number of pages7
JournalACS Applied Materials and Interfaces
Volume8
Issue number26
DOIs
StatePublished - Jul 6 2016

Keywords

  • interface
  • layered oxides
  • multiferroic
  • self-assembly
  • strain engineering

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