Skip to main navigation Skip to search Skip to main content

As-Grown InGaAsN Subcells for Multijunction Solar Cells by Molecular Beam Epitaxy

  • Maxime Levillayer
  • , Alexandre Arnoult
  • , Ines Massiot
  • , Sophie Duzellier
  • , Thierry Nuns
  • , Christophe Inguimbert
  • , Corinne Aicardi
  • , Stephanie Parola
  • , Helene Carrere
  • , Andrea Balocchi
  • , Nicolas Vaissiere
  • , Jean Decobert
  • , Guilhem Almuneau
  • , Laurent Artola
  • ONERA Office National d'Etudes et Recherches Aerospatiales
  • LAAS-CNRS
  • Centre National d'études Spatiales
  • Laboratory of Physics and Chemistry of Nano-objects (LPCNO-INSA)
  • Alcatel-Thales III-V Laboratory

Research output: Contribution to journalArticlepeer-review

8 Citations (Scopus)

Abstract

In this article, we investigate the molecular beam epitaxy growth of unannealed 1.12 eV InGaAsN solar cells. The impact of the growth temperature, the As/III ratio and the bismuth used as a surfactant are reported. An in-situ curvature measurement setup enables to monitor and ensures a constant N incorporation during the InGaAsN growth. Ex-situ characterization results suggest that a high As/III ratio ensures good optoelectronic properties and that the growth temperature has a strong influence on the residual doping of the dilute nitride layer. Under AM0 > 870 nm and without antireflection coatings, our best InGaAsN solar cells exhibit Jsc and Voc values of 7.94 mA/cm2 and 0.375 V, respectively. Considering no internal reflection and no grid shading, generation up to 12 mA/cm² in a multijunction solar cell can be expected, which is the highest value ever reported for As-grown InGaAsN cells to our knowledge.

Original languageEnglish
Article number9483676
Pages (from-to)1271-1277
Number of pages7
JournalIEEE Journal of Photovoltaics
Volume11
Issue number5
DOIs
Publication statusPublished - 1 Sept 2021
Externally publishedYes

Keywords

  • 1 eV cell
  • InGaAsN
  • dilute nitride
  • molecular beam epitaxy (MBE)
  • multijunction solar cells (MJSC)

Fingerprint

Dive into the research topics of 'As-Grown InGaAsN Subcells for Multijunction Solar Cells by Molecular Beam Epitaxy'. Together they form a unique fingerprint.

Cite this