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Novel Layered Supercell Structure from Bi2AlMnO6 for Multifunctionalities

  • Leigang Li
  • , Philippe Boullay
  • , Ping Lu
  • , Xuejing Wang
  • , Jie Jian
  • , Jijie Huang
  • , Xingyao Gao
  • , Shikhar Misra
  • , Wenrui Zhang
  • , Olivier Perez
  • , Gwladys Steciuk
  • , Aiping Chen
  • , Xinghang Zhang
  • , Haiyan Wang

Research output: Contribution to journalArticlepeer-review

29 Scopus citations

Abstract

Layered materials, e.g., graphene and transition metal (di)chalcogenides, holding great promises in nanoscale device applications have been extensively studied in fundamental chemistry, solid state physics and materials research areas. In parallel, layered oxides (e.g., Aurivillius and Ruddlesden-Popper phases) present an attractive class of materials both because of their rich physics behind and potential device applications. In this work, we report a novel layered oxide material with self-assembled layered supercell structure consisting of two mismatch-layered sublattices of [Bi3O3+δ] and [MO2]1.84 (M = Al/Mn, simply named BAMO), i.e., alternative layered stacking of two mutually incommensurate sublattices made of a three-layer-thick Bi-O slab and a one-layer-thick Al/Mn-O octahedra slab in the out-of-plane direction. Strong room-temperature ferromagnetic and piezoelectric responses as well as anisotropic optical property have been demonstrated with great potentials in various device applications. The realization of the novel BAMO layered supercell structure in this work has paved an avenue toward exploring and designing new materials with multifunctionalities.

Original languageEnglish
Pages (from-to)6575-6582
Number of pages8
JournalNano Letters
Volume17
Issue number11
DOIs
StatePublished - Nov 8 2017

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