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Renewed Prospects for Organic Photovoltaics

  • Guichuan Zhang
  • , Francis R. Lin
  • , Feng Qi
  • , Thomas Heumüller
  • , Andreas Distler
  • , Hans-Joachim Egelhaaf
  • , Ning Li
  • , Philip C. Y. Chow*
  • , Christoph J. Brabec*
  • , Alex K.-Y. Jen*
  • , Hin-Lap Yip*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Organic photovoltaics (OPVs) have progressed steadily through three stages of photoactive materials development: (i) use of poly(3-hexylthiophene) and fullerene-based acceptors (FAs) for optimizing bulk heterojunctions; (ii) development of new donors to better match with FAs; (iii) development of non-fullerene acceptors (NFAs). The development and application of NFAs with an A-D-A configuration (where A = acceptor and D = donor) has enabled devices to have efficient charge generation and small energy losses (Eloss < 0.6 eV), resulting in substantially higher power conversion efficiencies (PCEs) than FA-based devices. The discovery of Y6-type acceptors (Y6 = 2,2′-((2Z,2′Z)-((12,13-bis(2-ethylhexyl)-3,9-diundecyl-12,13-dihydro-[1,2,5]-thiadiazolo[3,4-e]-thieno[2″,3″:4′,5′]thieno-[2′,3′:4,5]pyrrolo-[3,2-g]thieno-[2′,3′:4,5]thieno-[3,2-b]indole-2,10-diyl)bis(methanylylidene))bis(5,6-difluoro-3-oxo-2,3-dihydro-1H-indene-2,1-diylidene))dimalononitrile) with an A-DA′ D-A configuration has further propelled the PCEs to go beyond 15% due to smaller Eloss values ( 0.5 eV) and higher external quantum efficiencies. Subsequently, the PCEs of Y6-series single-junction devices have increased to >19% and may soon approach 20%. This review provides an update of recent progress of OPV in the following aspects: developments of novel NFAs and donors, understanding of the structure-property relationships and underlying mechanisms of state-of-the-art OPVs, and tasks underpinning the commercialization of OPVs, such as device stability, module development, potential applications, and high-throughput manufacturing. Finally, an outlook and prospects section summarizes the remaining challenges for the further development of OPV technology.
Original languageEnglish
Pages (from-to)14180–14274
JournalChemical Reviews
Volume122
Issue number18
Online published5 Aug 2022
DOIs
Publication statusPublished - 28 Aug 2022

Funding

This work was financially supported by the Guangdong Major Project of Basic and Applied Basic Research (No. 2019B030302007), the National Key Research and Development Program of China (No. 2017YFA0206600 and No. 2019YFA0705900) funded by MOST, the National Natural Science Foundation of China (No. 51903095), the Natural Science Foundation of Guangdong Province (No. 2021A1515010959), and the China Postdoctoral Science Foundation (No. 2019M662906). A.K.-Y.J. is grateful for the sponsorship of the Lee Shau-Kee Chair Professor (Materials Science), the APRC Grant of the City University of Hong Kong (9380086), the Office of Naval Research (N00014-20-1-2191), the GRF grant (11307621) and the CRF grant (C6023-19GF) from the Research Grants Council of Hong Kong, the Innovation Technology Fund (GHP/018/20SZ), and the Guangdong–Hong Kong–Macao Joint Laboratory of Optoelectronic and Magnetic Functional Materials (2019B121205002). P.C.Y.C. acknowledges support from the Hong Kong Research Grant Council for the GRF grant (16302520) and research funding from the University of Hong Kong. F.R.L. acknowledges the support of the Postdoctoral Fellowship Scheme from the Research Grants Council of Hong Kong.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy
  2. SDG 9 - Industry, Innovation, and Infrastructure
    SDG 9 Industry, Innovation, and Infrastructure

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