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Dislocation-free Ge Nano-crystals via Pattern Independent Selective Ge Heteroepitaxy on Si Nano-Tip Wafers

  • Gang Niu
  • , Giovanni Capellini
  • , Markus Andreas Schubert
  • , Tore Niermann
  • , Peter Zaumseil
  • , Jens Katzer
  • , Hans Michael Krause
  • , Oliver Skibitzki
  • , Michael Lehmann
  • , Ya Hong Xie
  • , Hans Von Känel
  • , Thomas Schroeder
  • Innovations for High Performance Microelectronics
  • Roma Tre University
  • Technical University of Berlin
  • University of California at Los Angeles
  • Swiss Federal Institute of Technology Zurich
  • Brandenburg University of Technology

科研成果: 期刊稿件文章同行评审

34 引用 (Scopus)

摘要

The integration of dislocation-free Ge nano-islands was realized via selective molecular beam epitaxy on Si nano-tip patterned substrates. The Si-tip wafers feature a rectangular array of nanometer sized Si tips with (001) facet exposed among a SiO 2 matrix. These wafers were fabricated by complementary metal-oxide-semiconductor (CMOS) compatible nanotechnology. Calculations based on nucleation theory predict that the selective growth occurs close to thermodynamic equilibrium, where condensation of Ge adatoms on SiO 2 is disfavored due to the extremely short re-evaporation time and diffusion length. The growth selectivity is ensured by the desorption-limited growth regime leading to the observed pattern independence, i.e. the absence of loading effect commonly encountered in chemical vapor deposition. The growth condition of high temperature and low deposition rate is responsible for the observed high crystalline quality of the Ge islands which is also associated with negligible Si-Ge intermixing owing to geometric hindrance by the Si nano-tip approach. Single island as well as area-averaged characterization methods demonstrate that Ge islands are dislocation-free and heteroepitaxial strain is fully relaxed. Such well-ordered high quality Ge islands present a step towards the achievement of materials suitable for optical applications.

源语言英语
文章编号22709
期刊Scientific Reports
6
DOI
出版状态已出版 - 4 3月 2016

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