Published May 21, 2020 | Version v1
Preprint Open

Light management design in ultra-thin chalcopyrite photovoltaic devices by employing optical modelling

  • 1. University of Ljubljana, Faculty of Electrical Engineering
  • 2. Uppsala University, dep. Eng. Sciences, Angstrom Lab
  • 3. Uppsala University, dep. Eng. Sciences, Angstrom La
  • 4. TNO, Solar Technology and Applications, High Tech Campus 21
  • 5. Université Catholique de Louvain, ICTEAM Institute
  • 6. International Iberian Nanotechnology Laboratory

Description

In ultra-thin chalcopyrite solar cells and photovoltaic modules, efficient light management is required to increase the photocurrent and to gain in conversion efficiency. In this work we employ optical modelling to investigate different optical approaches and quantify their potential improvements in the short-circuit current density of Cu(In, Ga)Se2 (CIGS) devices. For structures with an ultra-thin (500 nm) CIGS absorber, we study the improvements related to the introduction of (i) highly reflective metal back reflectors, (ii) internal nano-textures applied to the substrate and (iii) external micro-textures by using a light management foil. In the analysis we use CIGS devices in a PV module configuration, thus, solar cell structure including encapsulation and front glass. A thin Al2O3 layer was considered in the structure at the rear side of CIGS for passivation and diffusion barrier for metal reflectors. We show that not any individual aforementioned approach is sufficient to compensate for the short circuit drop related to ultra-thin absorber, but a combination of a highly reflective back contact and textures (internal or external) is needed to obtain and also exceed the short-circuit current density of a thick (1800 nm) CIGS absorber.

Notes

The authors acknowledge the financial support of the H2020 project ARCIGS-M (GA No. 720887 - H2020 NMBP-2016-2017).

Files

SOLMAT-_kovacic.pdf

Files (1.0 MB)

Name Size Download all
md5:73abfc9bd3f1a38a610c02f8a3ba746f
1.0 MB Preview Download

Additional details

Funding

ARCIGS-M – Advanced aRchitectures for ultra-thin high-efficiency CIGS solar cells with high Manufacturability 720887
European Commission