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Room-Temperature Ferroelectric LiNb<inf>6</inf>Ba<inf>5</inf>Ti<inf>4</inf>O<inf>30</inf>Spinel Phase in a Nanocomposite Thin Film Form for Nonlinear Photonics

  • Jijie Huang
  • , Han Wang
  • , Dongfang Li
  • , Zhimin Qi
  • , Di Zhang
  • , Ping Lu
  • , Hou Tong Chen
  • , Dmitry A. Yarotski
  • , Pao Tai Lin
  • , Xinghang Zhang
  • , Haiyan Wang

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

Tetragonal tungsten bronze (TTB) materials are one of the most promising classes of materials for ferroelectric and nonlinear optical devices, owing to their very unique noncentrosymmetric crystal structure. In this work, a new TTB phase of LiNb6Ba5Ti4O30 (LNBTO) has been discovered and studied. A small amount of a secondary phase, LiTiO2 (LTO), has been incorporated as nanopillars that are vertically embedded in the LNBTO matrix. The new multifunctional nanocomposite thin film presents exotic highly anisotropic microstructure and properties, e.g., strong ferroelectricity, high optical transparency, anisotropic dielectric function, and strong optical nonlinearity evidenced by the second harmonic generation results. An optical waveguide structure based on the stacks of α-Si on SiO2/LNBTO-LTO has been fabricated, exhibiting low optical dispersion with an optimized evanescent field staying in the LNBTO-LTO active layer. This work highlights the combination of new TTB material designs and vertically aligned nanocomposite structures for further enhanced anisotropic and nonlinear properties.
Original languageEnglish
Pages (from-to)23076-23083
Number of pages8
JournalACS Applied Materials and Interfaces
Volume12
Issue number20
DOIs
StatePublished - May 20 2020

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