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Inverted organic solar cells with an in situ-derived SiOxNy passivation layer and power conversion efficiency exceeding 18%

Year of publication

2025

Authors

Bowen Liu; Oskar J. Sandberg; Jian Qin; Yueying Liu; Sebastian Wilken; Na Wu; Xuelai Yu; Jin Fang; Zhiyun Li; Rong Huang; Wusong Zha; Qun Luo; Hongwei Tan; Ronald Österbacka; Chang-Qi Ma

Abstract

Inverted organic solar cells are attractive for commercialization. However, their power conversion efficiency (PCE) still lags their conventional architecture counterpart. Here we propose a new approach to enhance the performance and stability of structure-inverted non-fullerene organic solar cells. We use an in situ-derived inorganic SiOxNy passivation layer, formed by curing a solution-deposited perhydropolysilazane thin film in ambient atmosphere on top of the commonly used ZnO transport layer. Oxygen vacancies and dangling bonds of ZnO create a doped region in the photoactive layer, leading to losses in photocurrent due to enhanced recombination of photogenerated holes within this region. The optimized SiOxNy interlayer effectively passivates the ZnO surface defects by forming Zn–O–Si bonds, leading to a vanishing doped region. At the same time, SiOxNy induces a preferential accumulation of the non-fullerene acceptor near the electron contact, which also favours charge extraction. The combination of both effects leads to increased photocurrent density and PCE, with certified PCE values of 18.49% and 18.06% for cells with active areas of 5.77 mm2 and 100.17 mm2, respectively, using PM6:L8-BO as the photoactive layer. Importantly, cells containing inorganic SiOxNy exhibit an estimated T80 lifetime of 24,700 h (where T80 is the time it takes for the PCE to drop to 80% of its initial value) under white light illumination, corresponding to an operational lifespan exceeding 16 years. The results underscore the potential of our approach for practical applications of highly efficient and stable inverted organic solar cells.
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Organizations and authors

Åbo Akademi University

Sandberg Oskar J. Orcid -palvelun logo

Österbacka Ronald Orcid -palvelun logo

Wilken Sebastian Orcid -palvelun logo

Publication type

Publication format

Article

Parent publication type

Journal

Article type

Original article

Audience

Scientific

Peer-reviewed

Peer-Reviewed

MINEDU's publication type classification code

A1 Journal article (refereed), original research

Publication channel information

Journal/Series

Nature Photonics

Volume

19

Issue

2

Pages

195-203

​Publication forum

63775

​Publication forum level

3

Open access

Open access in the publisher’s service

No

Self-archived

Yes

Other information

Fields of science

Physical sciences; Chemical sciences; Materials engineering; Nanotechnology

Identified topic

[object Object]

Internationality of the publisher

International

Language

English

International co-publication

Yes

Co-publication with a company

No

DOI

10.1038/s41566-024-01574-0

The publication is included in the Ministry of Education and Culture’s Publication data collection

Yes