Stabilizing Copper‐Metallized Silicon Heterojunction and Hybrid Back‐Contact Solar Cells Against Light‐Induced Degradation

ABSTRACT The replacement of expensive silver with copper (Cu) electrodes is a critical pathway for reducing the cost of silicon heterojunction (SHJ) and hybrid back‐contact (BC) solar cells. Electroplated copper grids enable high performance in SHJ and hybrid BC, yielding efficiencies of 25.71% and 26.95%, respectively, representing a 0.25% absolute gain for SHJ over silver references. A critical barrier to adoption is copper‐related light‐induced degradation (LID) which severely affects devices with n ‐type microcrystalline silicon ( n ‐µc‐Si) electron transport layers, inducing an efficiency loss of about 1.21%. We find this degradation stems from electric field‐ and temperature‐driven Cu migration, through the n ‐µc‐Si and transparent conductive oxide (TCO). To address this issue, we develop a stabilization strategy using an oxygen‐doped n ‐µc‐SiO X layer combined with a post‐deposition anneal of TCO. This approach improves optical transmittance, and strengthens the barrier against copper diffusion. Consequently, the light‐induced efficiency loss is minimized to only 0.14% for Cu‐electrode SHJ, which also gain an additional 0.12% in initial efficiency. Cu‐electrode hybrid BC exhibit similarly stability with 0.17% degradation. This work contributes to the development of high‐efficient, stable, and low‐cost silicon solar cells by providing key insights and practical strategies for implementing copper metallization.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-10-09
DOI
https://doi.org/10.1002/adfm.78901
Primary Topic
Silicon and Solar Cell Technologies
Type
article
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article

Stabilizing Copper‐Metallized Silicon Heterojunction and Hybrid Back‐Contact Solar Cells Against Light‐Induced Degradation

Zilong Zheng, Kun Zheng, Hui Yan, Xiqi Yang et al.
Advanced Functional Materials
Silicon and Solar Cell Technologies
article

Stabilizing Copper‐Metallized Silicon Heterojunction and Hybrid Back‐Contact Solar Cells Against Light‐Induced Degradation

Zilong Zheng, Kun Zheng, Hui Yan, Xiqi Yang, Yuhua Wang, Jiaxing Wang, Jiarong Huang, Yusheng Yang, Qinghua Zeng, Jinyan Zhang, Yuzhou He, Hong Zhang
article en

Abstract

ABSTRACT The replacement of expensive silver with copper (Cu) electrodes is a critical pathway for reducing the cost of silicon heterojunction (SHJ) and hybrid back‐contact (BC) solar cells. Electroplated copper grids enable high performance in SHJ and hybrid BC, yielding efficiencies of 25.71% and 26.95%, respectively, representing a 0.25% absolute gain for SHJ over silver references. A critical barrier to adoption is copper‐related light‐induced degradation (LID) which severely affects devices with n ‐type microcrystalline silicon ( n ‐µc‐Si) electron transport layers, inducing an efficiency loss of about 1.21%. We find this degradation stems from electric field‐ and temperature‐driven Cu migration, through the n ‐µc‐Si and transparent conductive oxide (TCO). To address this issue, we develop a stabilization strategy using an oxygen‐doped n ‐µc‐SiO X layer combined with a post‐deposition anneal of TCO. This approach improves optical transmittance, and strengthens the barrier against copper diffusion. Consequently, the light‐induced efficiency loss is minimized to only 0.14% for Cu‐electrode SHJ, which also gain an additional 0.12% in initial efficiency. Cu‐electrode hybrid BC exhibit similarly stability with 0.17% degradation. This work contributes to the development of high‐efficient, stable, and low‐cost silicon solar cells by providing key insights and practical strategies for implementing copper metallization.

Advanced Functional Materials
Beijing University of Technology (CN)
Openalex Percentile: Top 23%
Silicon and Solar Cell Technologies
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Stabilizing Copper‐Metallized Silicon Heterojunction and Hybrid Back‐Contact Solar Cells Against Light‐Induced Degradation — Zilong Zheng, Kun Zheng, et al. · Advanced Functional Materials (2026) | TGRS Research Map | TGRS