Long‐term outdoor study of an organic photovoltaic module for building integration

Author:

Luo Wei1ORCID,Khaing Aung Myint1,Rodriguez‐Gallegos Carlos David1ORCID,Leow Shin Woei1,Reindl Thomas1,Pravettoni Mauro12ORCID

Affiliation:

1. Solar Energy Research Institute of Singapore National University of Singapore Singapore

2. Renewable and Sustainable Research Center Technology Innovation Institute Abu Dhabi United Arab Emirates

Abstract

AbstractOrganic photovoltaics (OPV) has attracted tremendous attention as a promising alternative to silicon wafer‐based technologies for building integration. While significant progress has been achieved on the power conversion efficiency of OPV technologies, their field stability is rarely studied. This work investigates the field performance and reliability of a large‐area OPV module designed for building integration in tropical Singapore for 4.5 years. The device suffered more than 14% degradation in power at the standard testing conditions from the initial performance, largely due to losses in fill factor (−12% relative). During the monitoring period, it exhibited comparable performance to more conventional silicon PV technologies, with an average specific energy yield of about 4 kWh/kWp/day and an average performance ratio of 0.96. Excellent performance at low light conditions was also observed. However, its field performance was heavily impacted by soiling, which typically led to a 5 to 10% loss in the current output after several months. Further, the device's outdoor performance also showed a three‐stage degradation process, including (1) an initial slow degradation in the first 2 years (about −1%/year), (2) a stable period with negligible performance loss from Years 2 to 3.5, and (3) a rapid degradation in the last year (about −5%/year).

Funder

National Research Foundation Singapore

Energy Market Authority of Singapore

Economic Development Board - Singapore

Publisher

Wiley

Reference17 articles.

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2. Tandem Organic Solar Cell with 20.2% Efficiency

3. A Tandem Organic Photovoltaic Cell with 19.6% Efficiency Enabled by Light Distribution Control

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