Over 100 mV VOC Improvement for Rear Passivated ACIGS Ultra‐Thin Solar Cells

Author:

Oliveira António123ORCID,Curado Marco14ORCID,Teixeira Jennifer1ORCID,Tomé Daniela15,Çaha Ihsan1ORCID,Oliveira Kevin1ORCID,Lopes Tomás1678ORCID,Monteiro Margarida167ORCID,Violas André13ORCID,Correira Maria23,Fernandes Paulo129,Deepak Francis1ORCID,Edoff Marika10ORCID,Salomé Pedro13ORCID

Affiliation:

1. INL – International Iberian Nanotechnology Laboratory Avenida Mestre José Veiga Braga 4715‐330 Portugal

2. i3N Universidade de Aveiro Campus Universitário de Santiago Aveiro 3810‐193 Portugal

3. Departamento de Física Universidade de Aveiro Campus Universitário de Santiago Aveiro 3810‐193 Portugal

4. CFisUC Department of Physics University of Coimbra Coimbra 3004‐516 Portugal

5. Departamento de Ciência dos Materiais NOVA School of Science and Technology Universidade Nova de Lisboa Campus de Caparica Caparica 2829‐516 Portugal

6. Imec division IMOMEC (partner in Solliance) Wetenschapspark 1 Diepenbeek 3590 Belgium

7. Institute for Material Research (IMO) Hasselt University (partner in Solliance) Agoralaangebouw H Diepenbeek 3590 Belgium

8. EnergyVille 2 Thor Park 8320 Genk 3600 Belgium

9. CIETI Departamento de Física Instituto Superior de Engenharia do Porto Instituto Politécnico do Porto Porto 4200‐072 Portugal

10. Ångström Laboratory Department of Engineering Sciences Uppsala University Uppsala 751 21 Sweden

Abstract

AbstractA decentralized energy system requires photovoltaic solutions to meet new aesthetic paradigms, such as lightness, flexibility, and new form factors. Notwithstanding, the materials shortage in the Green Transition is a concern gaining momentum due to their foreseen continuous demand. A fruitful strategy to shrink the absorber thickness, meeting aesthetic and shortage materials consumption targets, arises from interface passivation. However, a deep understanding of passivated systems is required to close the efficiency gap between ultra‐thin and thin film devices, and to mono‐Si. Herein, a (Ag,Cu)(In,Ga)Se2 ultra‐thin solar cell, with 92% passivated rear interface area, is compared with a conventional nonpassivated counterpart. A thin MoSe2 layer, for a quasi‐ohmic contact, is present in the two architectures at the contacts, despite the passivated device narrow line scheme. The devices present striking differences in charge carrier dynamics. Electrical and optoelectronic analysis combined with SCAPS modelling suggest a lower recombination rate for the passivated device, through a reduction on the rear surface recombination velocity and overall defects, comparing with the reference solar cell. The new architecture allows for a 2% efficiency improvement on a 640 nm ultra‐thin device, from 11% to 13%, stemming from an open circuit voltage increase of 108 mV.

Funder

Fundação para a Ciência e a Tecnologia

Ministério da Educação e Ciência

European Regional Development Fund

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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