4.6 Article

Microstructure and ferroelectricity of BaTiO3 thin films on Si for integrated photonics

期刊

NANOTECHNOLOGY
卷 28, 期 7, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1361-6528/aa53c2

关键词

ferroelectric oxides; silicon photonics; optoelectronic devices and components

资金

  1. National Science Foundation [IRES-1358111]
  2. Air Force Office of Scientific Research [FA9550-12-10494, FA9550-14-1-0090]
  3. European Commission [FP7-ICT-2013-11-619456-SITOGA, H2020-ICT-2015-25-688579]
  4. SNSF R'Equip Program [206021-144988]
  5. Office Of Internatl Science &Engineering
  6. Office Of The Director [1358111] Funding Source: National Science Foundation
  7. Swiss National Science Foundation (SNF) [206021_144988] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

Significant progress has been made in integrating novel materials into silicon photonic structures in order to extend the functionality of photonic circuits. One of these promising optical materials is BaTiO3 or barium titanate (BTO) that exhibits a very large Pockels coefficient as required for high-speed light modulators. However, all previous demonstrations show a noticable reduction of the Pockels effect in BTO thin films deposited on silicon substrates compared to BTO bulk crystals. Here, we report on the strong dependence of the Pockels effect in BTO thin films on their microstructure, and provide guidelines on how to engineer thin films with strong electro-optic response. We employ several deposition methods such as molecular beam epitaxy and chemical vapor deposition to realize BTO thin films with different morphology and crystalline structure. While a linear electro-optic response is present even in porous, polycrystalline BTO thin films with an effective Pockels coefficient r(eff). = 6 pmV(-1), it is maximized for dense, tetragonal, epitaxial BTO films (r(eff) = 140 pm V-1). By identifying the key structural predictors of electro-optic response in BTO/Si, we provide a roadmap to fully exploit the linear electro-optic effect in novel hybrid oxide/semiconductor nanophotonic devices.

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