Overcoming optical losses in thin metal-based recombination layers for efficient n-i-p perovskite-organic tandem solar cells

J JingJing Tian C Chao Liu K Karen Forberich A Anastasia Barabash (Forschungszentrum Jülich GmbH) Z Zhiqiang Xie S Shudi Qiu J Jiwon Byun Z Zijian Peng (Faculty of Engineering, Department of Material Science) K Kaicheng Zhang T Tian Du S Sanjayan Sathasivam (School of Engineering & Design) T Thomas J. Macdonald L Lirong Dong C Chaohui Li (Faculty of Engineering, Department of Material Science) J Jiyun Zhang (Forschungszentrum Jülich GmbH) M Marcus Halik V Vincent M. Le Corre A Andres Osvet T Thomas Heumüller N Ning Li Y Yinhua Zhou L Larry Lüer C Christoph J. Brabec (Institute of Energy Materials and Devices - Photovoltaics (IMD-3))

Abstract

AbstractPerovskite-organic tandem solar cells (P-O-TSCs) hold substantial potential to surpass the theoretical efficiency limits of single-junction solar cells. However, their performance is hampered by non-ideal interconnection layers (ICLs). Especially in n-i-p configurations, the incorporation of metal nanoparticles negatively introduces serious parasitic absorption, which alleviates photon utilization in organic rear cell and decisively constrains the maximum photocurrent matching with front cell. Here, we demonstrate an efficient strategy to mitigate optical losses in Au-embedded ICLs by tailoring the shape and size distribution of Au nanoparticles via manipulating the underlying surface property. Achieving fewer, smaller, and more uniformly spherical Au nanoparticles significantly minimizes localized surface plasmon resonance absorption, while maintaining efficient electron-hole recombination within ICLs. Consequently, optimized P-O-TSCs combining CsPbI2Br with various organic cells benefit from a substantial current gain of >1.5 mA/cm2 in organic rear cells, achieving a champion efficiency of 25.34%. Meanwhile, optimized ICLs contribute to improved long-term device stability.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 02, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (23)

J

JingJing Tian

C

Chao Liu

K

Karen Forberich

A

Anastasia Barabash

Forschungszentrum Jülich GmbH

Z

Zhiqiang Xie

S

Shudi Qiu

J

Jiwon Byun

Z

Zijian Peng

Faculty of Engineering, Department of Material Science

K

Kaicheng Zhang

T

Tian Du

S

Sanjayan Sathasivam

School of Engineering & Design

T

Thomas J. Macdonald

L

Lirong Dong

C

Chaohui Li

Faculty of Engineering, Department of Material Science

J

Jiyun Zhang

Forschungszentrum Jülich GmbH

M

Marcus Halik

V

Vincent M. Le Corre

A

Andres Osvet

T

Thomas Heumüller

N

Ning Li

Y

Yinhua Zhou

L

Larry Lüer

C

Christoph J. Brabec

Institute of Energy Materials and Devices - Photovoltaics (IMD-3)