Near-Unity Broadband Quantum Efficiency Enabled by Colloidal Quantum Dot/Mixed-Organic Heterojunction

  • Jung, Yujin
  • Shin, Hyeyoung
  • Baek, Se-Woong
  • Tai, Truong Ba
  • Scheffel, Benjamin
  • 외 5명
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초록

Solution-processed semiconducting materials are promising for realizing high-performance, low-cost, and flexible energy conversion devices. In particular, hybrid structures comprising colloidal quantum dots (CQDs) and organic molecules have been proposed to achieve broadband absorption across the visible-to-infrared solar spectrum. However, the photophysical mismatch present at CQD/organic interfaces limits charge extraction, resulting in low power conversion efficiency (PCE). In this study, we sought to overcome this photophysical mismatch, addressing the CQD/organic interface using a library of surface ligands with different functions. We established, using both experiments and theoretical calculations, that thiol termination of the CQD surface reduced the interfacial barrier, resulting in a 4-fold higher charge transfer efficiency at the maximum power point bias. The CQD/mixedorganic heterojunction solar cells exhibit a record photocurrent density of 33.3 mA/cm2 and near-unity broadband quantum efficiency up to 1100 nm, demonstrating the potential of these devices to harvest infrared solar photons in all-solution processed tandem devices.

키워드

SOLAR-CELLSLIGANDS
제목
Near-Unity Broadband Quantum Efficiency Enabled by Colloidal Quantum Dot/Mixed-Organic Heterojunction
저자
Jung, YujinShin, HyeyoungBaek, Se-WoongTai, Truong BaScheffel, BenjaminOuellette, OlivierBiondi, MargheritaHoogland, Sjoerdde Arquer, F. Pelayo GarciaSargent, Edward H.
DOI
10.1021/acsenergylett.3c00495
발행일
2023-05-12
유형
Article
저널명
ACS Energy Letters
8
5
페이지
2331 ~ 2337