A Tuned Alternating D–A Copolymer Hole-Transport Layer Enables Colloidal Quantum Dot Solar Cells with Superior Fill Factor and Efficiency

  • Kim, H.I.
  • Baek, S.-W.
  • Cheon, H.J.
  • Ryu, S.U.
  • Lee, S.
  • 외 9명
Citations

SCOPUS

81

초록

The need for optoelectronic and chemical compatibility between the layers in colloidal quantum dot (CQD) photovoltaic devices remains a bottleneck in further increasing performance. Conjugated polymers are promising candidates as new hole-transport layer (HTL) materials in CQD solar cells (CQD-SCs) owing to the highly tunable optoelectronic properties and compatible chemistries. A diketopyrrolopyrrole-based polymer with benzothiadiazole derivatives (PD2FCT-29DPP) as an HTL in these devices is reported. The energy level, molecular orientation, and hole mobility of this HTL are manipulated through molecular engineering. By levering the polymer's optical absorption spectrum complementary to that of the CQD active layer, EQE across the visible and near-infrared regions is maximized. As a result, a PD2FCT-29DPP-based device exhibits a fill factor of 70% and approximately 35% efficiency enhancement compared to a PTB7-based device. © 2020 Wiley-VCH GmbH

키워드

alternating D–A copolymerscolloidal quantum dotsconducting polymershole-transport layerssolar cellsAbsorption spectroscopyConjugated polymersHole mobilityInfrared devicesLight absorptionMolecular orientationNanocrystalsQuantum chemistrySemiconductor quantum dotsSolsBenzothiadiazole derivativesChemical compatibilityColloidal quantum dotsDiketopyrrolopyrrolesEfficiency enhancementHole transport layersOptoelectronic propertiesVisible and near infraredPolymer solar cells
제목
A Tuned Alternating D–A Copolymer Hole-Transport Layer Enables Colloidal Quantum Dot Solar Cells with Superior Fill Factor and Efficiency
저자
Kim, H.I.Baek, S.-W.Cheon, H.J.Ryu, S.U.Lee, S.Choi, M.-J.Choi, K.Biondi, M.Hoogland, S.de, Arquer F.P.G.Kwon, S.-K.Kim, Y.-H.Park, T.Sargent, E.H.
DOI
10.1002/adma.202004985
발행일
2020
유형
Article
저널명
Advanced Materials
32
48