Strategies for realizing high-efficiency silicon heterojunction solar cells

Journal Article (2023)
Author(s)

Yifeng Zhao (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Paul Procel (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Can Han (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Liqi Cao (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Guangtao Yang (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Engin Özkol (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Alba Alcañiz

Katarina Kovačević (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Gianluca Limodio (TU Delft - Applied Sciences)

Rudi Santbergen (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Arno Smets (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Arthur Weeber (TU Delft - Electrical Engineering, Mathematics and Computer Science, TNO)

Miro Zeman (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Luana Mazzarella (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Olindo Isabella (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Research Group
Photovoltaic Materials and Devices
DOI related publication
https://doi.org/10.1016/j.solmat.2023.112413 Final published version
More Info
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Publication Year
2023
Language
English
Research Group
Photovoltaic Materials and Devices
Journal title
Solar Energy Materials and Solar Cells
Volume number
258
Article number
112413
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Abstract

Silicon heterojunction (SHJ) solar cells have achieved a record efficiency of 26.81% in a front/back-contacted (FBC) configuration. Moreover, thanks to their advantageous high VOC and good infrared response, SHJ solar cells can be further combined with wide bandgap perovskite cells forming tandem devices to enable efficiencies well above 33%. In this study, we present strategies to realize high-efficiency SHJ solar cells through combined theoretical and experimental studies, starting from the optimization of Si-based thin-film layers to the implementation of electrodes with reduced indium and silver usage. Advanced opto-electrical simulations, which enable comprehensive theoretical understandings of the main physical mechanisms governing carriers’ collection and light management, provide clear pathways for device designs and experimental optimizations. We present the fabricated FBC-SHJ solar cells in both monofacial and bifacial configurations with the best efficiencies of 24.18% and 23.25%, respectively. We point out that to achieve optimum device performance, the compositional materials should be holistically optimized and evaluated as part of the contact stacks with adjacent layers. As an outlook beyond the classical FBC-SHJ solar cell architecture, we propose various novel SHJ-based solar cell architectures. Their potential performance was assessed and compared via rigorous opto-electrical simulations and a maximal efficiency of 27.60% was simulated for FBC-SHJ solar cells featuring localized contacts.