High‐Bandgap Perovskites for Efficient Indoor Light Harvesting

Author:

Shcherbachenko Sergey12ORCID,Astakhov Oleksandr1,Liu Zhifa1,Kin Li‐Chung13,Zahren Christoph1,Rau Uwe12,Kirchartz Thomas14,Merdzhanova Tsvetelina1ORCID

Affiliation:

1. IEK‐5 Photovoltaik Forschungszentrum Jülich GmbH Wilhelm‐Johnen Straße 52425 Jülich Germany

2. Jülich Aachen Research Alliance JARA‐Energy and Faculty of Electrical Engineering and Information Technology RWTH Aachen University Schinkelstr. 2 52062 Aachen Germany

3. IEK‐9 Grundlagen der Elektrochemie Forschungszentrum Jülich 52425 Jülich Germany

4. Faculty of Engineering and CENIDE University of Duisburg‐Essen Carl‐Benz‐Str. 199 47057 Duisburg Germany

Abstract

The use of metal‐halide perovskites in photovoltaic applications has become increasingly attractive due to their low‐temperature manufacturing processes and long charge‐carrier lifetimes. High‐bandgap perovskite solar cells have potential for indoor applications due to their efficient absorption of the spectrum of light‐emitting diodes (LEDs). This study investigates the performance of high‐bandgap perovskite solar cells under a wide range of lighting conditions, including a commercially available white LED lamp with a 5–40 000 lx illuminance range and a standard 1 sun reference. The performance of CH3NH3PbI3‐based perovskite solar cells to CH3NH3Pb(I0.8,Br0.2)3 solar cells with varying electron transport layers (ETL), including PCBM, PCBM:CMC, and CMC:ICBA fullerene combinations, is compared. Because the spectral response of perovskite solar cells covers the white LED spectrum very well, the major performance difference is related to the open‐circuit voltage and fill factor. The cells with the CH3NH3Pb(I0.8,Br0.2)3 absorber layer and the CMC:ICBA ETL demonstrate superior open‐circuit voltage and therefore a high efficiency above 29% at 200–500 lx, typical for indoor lighting.

Funder

HORIZON EUROPE European Innovation Council

Publisher

Wiley

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