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High-performance bifacial perovskite solar cells enabled by single-walled carbon nanotubes.

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Peer-reviewed

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Abstract

Bifacial perovskite solar cells have shown great promise for increasing power output by capturing light from both sides. However, the suboptimal optical transmittance of back metal electrodes together with the complex fabrication process associated with front transparent conducting oxides have hindered the development of efficient bifacial PSCs. Here, we present a novel approach for bifacial perovskite devices using single-walled carbon nanotubes as both front and back electrodes. single-walled carbon nanotubes offer high transparency, conductivity, and stability, enabling bifacial PSCs with a bifaciality factor of over 98% and a power generation density of over 36%. We also fabricate flexible, all-carbon-electrode-based devices with a high power-per-weight value of 73.75 W g-1 and excellent mechanical durability. Furthermore, we show that our bifacial devices have a much lower material cost than conventional monofacial PSCs. Our work demonstrates the potential of SWCNT electrodes for efficient, stable, and low-cost bifacial perovskite photovoltaics.

Description

Acknowledgements: J.Z., W.Z. and S.R.P.S thanks the EPSRC standard research (EP/V027131/1), Newton Advanced Fellowship (192097) and Equal Opportunities Foundation Hong Kong for financial support for financial support. X.G.H. thanks the National Natural Science Foundation of China (62304163) and Qinchuangyuan Cited High-level Innovation and Entrepreneurship Talent Projects (QCYRCXM−2022-364). HM.C. acknowledges support by the National Natural Science Foundation of China (No. 52188101), K.J. and S.D.S. acknowledge funding from the Royal Society and Tata Group (UF150033) and support from the European Research Council (European Union’s Horizon 2020, HYPERION 756962 and PEROVSCI 957513).

Journal Title

Nat Commun

Conference Name

Journal ISSN

2041-1723
2041-1723

Volume Title

15

Publisher

Springer Nature

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Except where otherwised noted, this item's license is described as Attribution 4.0 International
Sponsorship
European Research Council (756962)
European Commission Horizon 2020 (H2020) ERC (957513)
Engineering and Physical Sciences Research Council (EP/V027131/1)