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  4. In situ growth of graphene on both sides of a Cu-Ni alloy electrode for perovskite solar cells with improved stability
 
research article

In situ growth of graphene on both sides of a Cu-Ni alloy electrode for perovskite solar cells with improved stability

Lin, Xuesong
•
Su, Hongzhen
•
He, Sifan
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May 30, 2022
Nature Energy

The instability of rear electrodes undermines the long-term operational durability of efficient perovskite solar cells. Here, a composite electrode of copper-nickel (Cu-Ni) alloy stabilized by in situ grown bifacial graphene is designed. The alloying makes the work function of Cu suitable for regular perovskite solar cells. Cu-Ni is the ideal substrate for preparing high-quality graphene via chemical vapour deposition, which simultaneously protects the device from oxygen, water and reactions between internal components. To rivet the composite electrode with the semi-device, a thermoplastic copolymer is applied as an adhesive layer through hot pressing. The resulting devices achieve power conversion efficiencies of 24.34% and 20.76% (certified 20.86%) with aperture areas of 0.09 and 1.02 cm(2), respectively. The devices show improved stability: 97% of their initial efficiency is retained after 1,440 hours of a damp-heat test at 85 degrees C with a relative humidity of 85%; 95% of their initial efficiency is retained after 5,000 hours at maximum power point tracking under continuous 1 sun illumination.

The instability of contact layers for perovskite solar cells under operating conditions limits the deployment of the technology. Now, Lin et al. develop a Cu-Ni electrode sandwiched between in situ-grown graphene protective layers, enabling solar cells with improved stability under light, humidity and high temperature.

  • Details
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Type
research article
DOI
10.1038/s41560-022-01038-1
Web of Science ID

WOS:000802955400002

Author(s)
Lin, Xuesong
Su, Hongzhen
He, Sifan
Song, Yenan
Wang, Yanbo
Qin, Zhenzhen
Wu, Yongzhen
Yang, Xudong
Han, Qifeng
Fang, Junfeng
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Date Issued

2022-05-30

Publisher

NATURE PORTFOLIO

Published in
Nature Energy
Subjects

Energy & Fuels

•

Materials Science, Multidisciplinary

•

Materials Science

•

high-performance

•

degradation

•

gold

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPI  
Available on Infoscience
June 20, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/188674
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