Composition variations in Cu(In,Ga)(S,Se)2 solar cells: not a gradient, but an interlaced network of two phases

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Prot, Aubin JC. M., Melchiorre, Michele, Dingwell, Felix, Zelenina, Anastasia, Elanzeery, Hossam, Lomuscio, Alberto, Dalibor, Thomas, Guc, Maxim, Fonoll-Rubio, Robert, Izquierdo-Roca, Victor, Kusch, Gunnar, Oliver, Rachel A., Siebentritt, Susanne
Format: Preprint
Published: 2023
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866917108624916480
author Prot, Aubin JC. M.
Melchiorre, Michele
Dingwell, Felix
Zelenina, Anastasia
Elanzeery, Hossam
Lomuscio, Alberto
Dalibor, Thomas
Guc, Maxim
Fonoll-Rubio, Robert
Izquierdo-Roca, Victor
Kusch, Gunnar
Oliver, Rachel A.
Siebentritt, Susanne
author_facet Prot, Aubin JC. M.
Melchiorre, Michele
Dingwell, Felix
Zelenina, Anastasia
Elanzeery, Hossam
Lomuscio, Alberto
Dalibor, Thomas
Guc, Maxim
Fonoll-Rubio, Robert
Izquierdo-Roca, Victor
Kusch, Gunnar
Oliver, Rachel A.
Siebentritt, Susanne
contents Record efficiency in chalcopyrite-based solar cells Cu(In,Ga)(S,Se)2 is achieved using a gallium gradient to increase the band gap of the absorber towards the back side. Although this structure has successfully reduced recombination at the back contact, we demonstrate that in industrial absorbers grown in the pilot line of Avancis, the back part is a source of non-radiative recombination. Depth-resolved photoluminescence (PL) measurements reveal two main radiative recombination paths at 1.04 eV and 1.5-1.6 eV, attributed to two phases of low and high band gap material, respectively. Instead of a continuous change in the band gap throughout the thickness of the absorber, we propose a model where discrete band gap phases interlace, creating an apparent gradient. Cathodoluminescence and Raman scattering spectroscopy confirm this result. Additionally, deep defects associated to the high gap phase reduce the absorber performance. Etching away the back part of the absorber leads to an increase of one order of magnitude in the PL intensity, i.e., 60 meV in quasi Fermi level splitting. Non-radiative voltage losses correlate linearly with the relative contribution of the high energy PL peak, suggesting that reducing the high gap phase could increase the open circuit voltage by up to 180 mV.
format Preprint
id arxiv_https___arxiv_org_abs_2307_02356
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Composition variations in Cu(In,Ga)(S,Se)2 solar cells: not a gradient, but an interlaced network of two phases
Prot, Aubin JC. M.
Melchiorre, Michele
Dingwell, Felix
Zelenina, Anastasia
Elanzeery, Hossam
Lomuscio, Alberto
Dalibor, Thomas
Guc, Maxim
Fonoll-Rubio, Robert
Izquierdo-Roca, Victor
Kusch, Gunnar
Oliver, Rachel A.
Siebentritt, Susanne
Materials Science
Record efficiency in chalcopyrite-based solar cells Cu(In,Ga)(S,Se)2 is achieved using a gallium gradient to increase the band gap of the absorber towards the back side. Although this structure has successfully reduced recombination at the back contact, we demonstrate that in industrial absorbers grown in the pilot line of Avancis, the back part is a source of non-radiative recombination. Depth-resolved photoluminescence (PL) measurements reveal two main radiative recombination paths at 1.04 eV and 1.5-1.6 eV, attributed to two phases of low and high band gap material, respectively. Instead of a continuous change in the band gap throughout the thickness of the absorber, we propose a model where discrete band gap phases interlace, creating an apparent gradient. Cathodoluminescence and Raman scattering spectroscopy confirm this result. Additionally, deep defects associated to the high gap phase reduce the absorber performance. Etching away the back part of the absorber leads to an increase of one order of magnitude in the PL intensity, i.e., 60 meV in quasi Fermi level splitting. Non-radiative voltage losses correlate linearly with the relative contribution of the high energy PL peak, suggesting that reducing the high gap phase could increase the open circuit voltage by up to 180 mV.
title Composition variations in Cu(In,Ga)(S,Se)2 solar cells: not a gradient, but an interlaced network of two phases
topic Materials Science
url https://arxiv.org/abs/2307.02356