4.8 Article

Understanding the Effect of Sequential Deposition Processing for High-Efficient Organic Photovoltaics to Harvest Sunlight and Artificial Light

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 17, 页码 20405-20416

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c02137

关键词

indoor organic photovoltaics; sequential deposition; asymmetric small-molecule acceptor; artificial light; sunlight; spectrum trade-off

资金

  1. National Science Fund for Distinguished Young Scholars [21925506]
  2. National Key R&D Program of China [2017YFE0106000]
  3. National Natural Science Foundation of China [51773212]
  4. Ningbo S&T Innovation 2025 Major Special Programme [2018B10055]
  5. Ningbo Municipal Science and Technology Innovative Research Team [2015B11002, 2016B10005]
  6. CAS Key Project of Frontier Science Research [QYZDB-SSW-SYS030]

向作者/读者索取更多资源

This study developed a novel asymmetric molecule and successfully enhanced the performance of high-efficient OPVs that can simultaneously harvest sunlight and artificial light in indoor environments using a sequential deposition bulk-heterojunction (SD-BHJ) method.
As the market of the Internet of Things (IoT) increases, great attention has been paid to the development of high-efficient organic photovoltaics (OPVs) utilizing artificial light. However, in a real indoor condition, the power density contribution of the artificial light cannot exceed 35% in the combination of indoor and outdoor irradiation, which indicates that the illumination of sunlight cannot be ignored during daytime. Hence, it is urgent to develop high-efficient OPVs in indoor conditions taking into account both sunlight and artificial light. In this work, a novel asymmetric molecule TB-4F was synthesized to trade-off the absorption spectrum that can be applied under both artificial light and sunlight. In conventional bulk-heterojunction (C-BHJ), it was figured out that due to nonoptimal morphology some carriers failed to be efficiently collected. Herein, a sequential deposition bulk-heterojunction (SD-BHJ) as an alternative fabrication method successfully enhanced the performance of OPVs, under both artificial light and sunlight, which was attributed to the favorable microstructure being vertically distributed in the active layer. Notably, the PCE was significantly increased by 25% for SD-BHJ compared to C-BHJ under artificial light, owing to the strong effect of trap-assisted recombination and dark current on PCE in the condition of low carrier density. Our result indicates that an asymmetric molecule with a blue-shifted spectrum fabricated by SD-BHJ can be a promising candidate that can be applied in indoor environments to harvest sunlight and artificial light simultaneously.

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