Electron contact interlayers for low‐temperature‐processed crystalline silicon solar cells

Author:

Michel Jesus Ibarra12,Le Anh Huy Tuan3ORCID,Yan Di1,Berghuis Willem‐Jan4,Korte Lars2,Liu Anyao5ORCID,Phang Sieu Pheng5,Chen Wenhao6ORCID,Macdonald Daniel5,Macco Bart4ORCID,Hameiri Ziv3ORCID,Bullock James1

Affiliation:

1. Department of Electrical and Electronic Engineering The University of Melbourne Melbourne Australia

2. Department Perovskite Tandem Solar Cells Helmholtz‐Zentrum Berlin Berlin Germany

3. School of Photovoltaic and Renewable Energy Engineering University of New South Wales Kensington Australia

4. Department of Applied Physics Eindhoven University of Technology Eindhoven MB The Netherlands

5. School of Engineering, College of Engineering, Computing and Cybernetics The Australian National University Canberra ACT Australia

6. School of Testing and Photoelectric Engineering Nanchang Hangkong University Nanchang China

Abstract

AbstractThis study focuses on electron‐selective passivating contacts for crystalline silicon (c‐Si) solar cells where an interlayer is used to provide a low contact resistivity between the c‐Si substrate and the metal electrode. These electron contact interlayers are used in combination with other passivating interlayers (e.g., a‐Si:H, TiOx, and Nb2O5) to improve surface passivation whilst still permitting contact resistivities suitable for high‐efficiency solar cells. We show that a wide variety of thermally evaporated materials, most of which have ionic character, enable an Ohmic contact between n‐type c‐Si and Al. From this pool of compounds, we observed that CsBr has especially promising behavior because of its excellent performance and thermal stability when combined with thin passivating layers. With different test structures, we were able to demonstrate low contact resistance using TiOx/CsBr, Nb2O5/CsBr, and a‐Si:H/CsBr stacks on n‐type c‐Si. The quality of the provided surface passivation depended on the stack but we achieved the best overall passivation stability with TiOx/CsBr. Finally, we were able to demonstrate an efficiency >20% on a laboratory‐scale solar cell that implements the TiOx/CsBr/Al stack as full‐area rear‐side electron selective contact.

Funder

Australian Renewable Energy Agency

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Condensed Matter Physics,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

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