Opto-Electronic Advances, Volume. 4, Issue 2, 200019-1(2021)

Review of blue perovskite light emitting diodes with optimization strategies for perovskite film and device structure

Zongtao Li1...2,*, Kai Cao1, Jiasheng Li1,2, Yong Tang1, Xinrui Ding1 and Binhai Yu1 |Show fewer author(s)
Author Affiliations
  • 1National & Local Joint Engineering Research Center of Semiconductor Display and Optical Communication Devices, South China University of Technology, Guangzhou 510640, China
  • 2Foshan Nationstar Optoelectronics Company Ltd., Foshan 528000, China.
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    Figures & Tables(10)
    Preliminary study of pure 3D perovskites and their blue PeLEDs. (a) Schematic diagram of the structure of 3D perovskites. (b) Photoluminescence spectra of MAPb(Br1−xClx)3 perovskite film with different ratios of Cl-. (c) SEM image of MAPb(Br1−xClx)3 perovskite film on ITO/PEDOT:PSS substrate. (d) Normalized EL spectra of CH3NH3Pb(BrxCl1−x)3 [0 ≤ x ≤ 1] perovskite thin-film-based LEDs with different chloride−bromide ratios, as indicated and measured at 77 K. Figure reproduced with permission from: (a-c) ref.35, American Chemical Society; (d) ref.36, American Chemical Society.
    Morphology and PLQY modification for 3D perovskites and their blue PeLEDs. (a) The calculated coverage degree and average grain size of perovskite films with various CsBr:RbBr molar ratios. (b) EL spectra of the device fabricated with cocktail cation strategy operating under different voltages. The inset shows a digital photograph of a device in operation. (c) PLQY measurements with various Mn doping ratios. (d) Time-resolved photoluminescence (TRPL) decays of samples A (deep-blue region), B (blue region), and C (sky-blue region). Figure reproduced with permission from: (a) ref.39, Royal Society of Chemistry; (b) ref.40, American Chemical Society; (c) ref.41, American Chemical Society; (d) ref.42, American Chemical Society.
    Spectral tuning strategies for PQDs and their blue PeLEDs. (a) Schematic diagram of CsPbBrxCl3-x QD-based blue PeLED device structure by the DDAB/DDAC post-treatment strategy. (b) EL spectra of CsPbBrxCl3−x QD-based PeLEDs with various ratios of DDAB and DDAC in precursor solution. The inset shows a digital photograph of the device in operation. (c) Schematic diagram of the halogen exchange process in PQDs enhanced by benzenesulfonates. Figure reproduced with permission from: (a) ref.53, American Chemical Society; (b) ref.54, American Chemical Society; (c) ref.55, American Chemical Society.
    Defects passivation strategies for PQDs and their blue PeLEDs. (a) TRPL curves of pristine, RbBr-modified, and FABr/RbBr-modified PQD films. (b) PLQY of Ni2+ ion-doped CsPbClxBr3−x PQDs in dispersion with NiCl2 precursor feeding amounts of 0, 0.01, 0.02, 0.04, and 0.08 ml. The inset shows photographs of the Ni2+ ion-doped CsPbClxBr3−x PQDs under 365 nm UV lamp illumination. (c) Illustration of Cl vacancy-induced trap site formation, electron trapping, and self-assembly of DAT on the defect sites of perovskite films. (d) EL spectra of Cs3Cu2I5 QD-based PeLEDs measured before aging, after running for 108 and 170 h, and after a relaxation time of 1 h. Figure reproduced with permission from: (a) ref.63, Royal Society of Chemistry; (b) ref.65, American Chemical Society; (c) ref.68, American Chemical Society; (d) ref.70, American Chemical Society.
    Dimension tuning and surface passivation strategies for PNLs and their blue PeLEDs. (a) A digital photograph of the first colloidal PNL-based pure-blue LED in operation (area: 3 mm × 5 mm). (b) Schematic diagram of colloidal NPLs treated by DDAB. (c) EL spectra of the colloidal PNL-based PeLEDs fabricated by Bohn et al. with PbBr2 post-treatment strategy. The inset shows digital photographs of a device in operation. (d) Illustration of in-situ passivation strategy of PbBr64− octahedra. Figure reproduced with permission from: (a) ref.74, American Chemical Society; (b) ref.75, American Chemical Society; (c) ref.76, American Chemical Society; (d) ref.78, American Chemical Society.
    Phases modulation strategies for quasi-2D perovskite and their PeLEDs. (a) EL spectra of BA cations-based quasi-2D PeLEDs. (b) PLQY and trap density curves of quasi-2D perovskite film with various concentration of PEABr. (c) PL spectra of Rb-Cs alloyed perovskite films with various composition. (d) Transient absorption spectra of PEA2MA1.5Pb2.5Br8.5 with various molar ratio of IPABr from 0 to 40%. Figure reproduced with permission from: (a) ref.85, American Chemical Society; (b) ref.87, Springer Nature; (c) ref.89, Springer Nature; (d) ref.91, Springer Nature.
    Spectral stability modification strategies for quasi-2D perovskite and their PeLEDs. (a) Schematic diagram of the yttrium gradient distribution in the CsPbBr3:PEACl (1:1) film and its function in increasing the bandgap around the grain surface. (b) Stable EL spectra of DPPOCl-treated PeLEDs before and after operation. The inset is the schematic diagram of the mechanism of the DPPOCl induced chlorides-insertion-immobilization process. (c) EL spectra of moisture-treated blue emissive device operated under a different bias with moral ratio of CsBr: PbBr2 of 2.2. Figure reproduced with permission from: (a) ref.98, Springer Nature; (b) ref.99, American Chemical Society; (c) ref.104, American Chemical Society.
    Interface modification strategies for blue PeLEDs. (a) Device structure of quasi-2D blue PeLEDs with LiF as the interface modification layer. (b) Energy level alignment diagram of blue PeLEDs with device structure of LiF-perovskite-LiF. (c) Device structure and (d) cross-section picture of quasi-2D PeLEDs with RbCl as the interface modification layer. Figure reproduced from: (a) ref.86, American Chemical Society; (b) ref.40, American Chemical Society; (c) and (d) ref.110, American Chemical Society.
    Energy level alignments of various ETL, HTL, and emissive layer materials.
    • Table 1. Summary of the main blue PeLEDs.

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      Table 1. Summary of the main blue PeLEDs.

      YearTypeDevice StructureDevice performance
      λ(EL)/FWHM (nm/nm) EQE (%)Max lumin (cd/m2) CE (cd/A)VT (V) Ref
      20163D BulkITO/PEDOT:PSS/Pero/TPBi/Ca/Al490/30-1540.084.1Ref.37
      20173D BulkITO/ZnO/Pero/NPD/MoO3/Al475/-1.7356711.313.2Ref.38
      20183D BulkITO/AZO:Cs/Pero/CuS-GaSnO/WO3/Ag475/192.58642615.213.1Ref.105
      20193D BulkITO/PEDOT:PSS/Pero/TPBi/LiF/Al490/0.581470-~4.2Ref.41
      20193D BulkITO/PEDOT:PSS/Pero/TyPmPb/LiF/Al468/20, 492/200.062, 0.17112,2440.06, 0.324.4,3.4Ref.39
      20193D BulkITO/NiOx/Pero/TPBi/LiF/Al456/24, 468/23, 480/200.15, 0.38, 0.0551,121,870.07, 0.21, 0.044,3.5,4Ref.42
      20203D BulkITO/PEDOT:PSS/RbCl/pero/Tmpypb/LiF/Al484/121.6692432.152.6Ref.110
      20203D BulkITO/LiF/pero//LiF/Bphen/Al484/222.0140152.11~4Ref.40
      2015NCITO/PEDOT:PSS/PVK/Pero/TPBi/LiF/Al455/200.077420.145.1Ref.43
      2016NCITO/ZnO/Pero/TFB/MoO3/Ag480/170.00748.7-5.5Ref.48
      2016NCITO/PEDOT:PSS/PVK/Pero/TPBi/LiF/Al445/301.182473-~7.8Ref.50
      2016NCITO/PEDOT:PSS/PVK/Pero/TPBi/LiF/Al490/191.935-3Ref.45
      2017NCITO/NiOx/Pero/TPBi/LiF/Al470/200.073500.18~5Ref.51
      2018NCITO/PEDOT:PSS/PVK/Pero/TPBi/LiF/Al465/15.6~0.2~1000.1~6Ref.52
      2018NCITO/TFB/PFI/Pero/TPBi/LiF/Al469/250.5111-~5Ref.107
      2018NCITO/POLY-TPD/Pero/TPBi/LiF/Al466/23, 502/230.61, 3.639, 7508.5@502 nm~4Ref.63
      2018NCITO/PEDOT/TFB/PFI/Pero/TPBi/LiF/Al466/17.12.12389-4Ref.64
      2019NCITO/PEDOT:PSS/POLY-TPD/CBP/Pero/B3PyMpM/LiF/Al463/141.4318-2.9Ref.49
      2019NCITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/LiF/Al458/18,469/18, 479/180.1,0.44,0.863.87, 11.95, 29.950.06, 0.28, 0.774.5,4,3.5Ref.53
      2019NCITO/PEDOT:PSS/POLY-TPD/PVK/Pero/B3PYMPM/TPBi/LiF/Al463/18, 476/18, 490/181.03, 2.25,3.5193, 678, 2063-3-3.4Ref.54
      2019NCITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/LiF/Al476/201.96212.9-3.2Ref.47
      2020NCITO/TFB/PFI/Pero/3TPYMP/Liq/Al471/176.2465--Ref.68
      2020NCITO/PEDOT:PSS/TFB/PFI/Pero/TPBi/LiF/Al470/-2.4612-3.2Ref.65
      2020NCITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/Ca/Ag469/18, 479/18, 489/18, 496/180.65,1,1.8,2.630,119, 182,6030.47, 0.94, 2.4,4.53.8,3.2, 3.4,3.2 Ref.55
      2020NCITO/NiOx/Pero/TPBi/LiF/Al445/-1.12262.64.5Ref.70
      2020NCITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/LiF/Al459/-0.3760.3-Ref.66
      2020NCITO/PEDOT:PSS/PTAA/Pero/TPBi/LiF/Al479/2012.3~600-2.8Ref.48
      2020NCITO/PEDOT:PSS/POLY-TPD/PVKPero/TyPmPB/LiF/Al462/19, 465/19, 468/20, 470/210.77,0.92,1.53, 2.15 450,518, 620,5074.5, 5.1, 5.4,6.04.4,4.6, 4.8,4.9 Ref.67
      2020NCITO/PEDOT:PSS/TFB/OAM-ClPero/TPBi/Liq/Al456/161.143.2-5.4Ref.69
      2020NCITO/PEDOT:PSS/TFB/PFI/Pero/TPBi/LiF/Al463/173.3569-4Ref.46
      2020NCITO/PEDOT:PSS/POLY-TPD/PFN-X/Pero/TPBi/LiF/Al470/171.3446.71.243Ref.109
      2016NPLITO/PEDOT:PSS/PVK/Host layer/Pero/TPBi/LiF/Al432/25, 456/25, 492/250.23, 0.0240.0048.5-3.5Ref.74
      2018NPLITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/LiF/Al480/-~0.125-4.6Ref.77
      2018NPLITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/Ca/Ag464/200.05738-3.6Ref.76
      2018NPLITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/LiF/Al463/120.124620.1174.2Ref.78
      2019NPLITO/PEDOT:PSS/TFB or POLY-TPD/Pero/TPBi/Ca/Ag464/16, 489/250.3,0.5548,400.3,1.14Ref.106
      2019NPLITO/PEDOT:PSS/POLY-TPD/Pero/TPBi/LiF/Al464/18, 490/180.11, 0.8771,186-4Ref.56
      2019NPLITO/PEDOT/POLY-TPD/CBP/Pero/TPBi/LiF/Al469/-1.4241.8-3Ref.75
      2020NPLITO/POLY-TPD/MoO3/Pero/TyPmPB/LiF/Al439/140.149.7-3.6Ref.83
      2016Quasi-2DITO/PEDOT:PSS/Pero/TPBi/Ca/Al410/140.038--2.5Ref.94
      2016Quasi-2DITO/ZnO/PEIE/Pero/TFB/MoOx/Al491/broad0.015186-2.9Ref.82
      2016Quasi-2DITO/PEDOT:PSS/POLY-TPD/QW-Pero/TPBi/LiF/Al468/280.01210.0065.2Ref.74
      2016Quasi-2DITO/PEDOT:PSS/Pero/TPBi/Ba/Al462/broad, 480/broad 0.06,1.11.62, 19.250.07,2.1-Ref.79
      2017Quasi-2DITO/PEDOT:PSS/Pero/TypmpB/CsF/Al485/broad2.6200-3.4Ref.84
      2018Quasi-2DITO/PEDOT:PSS/NiOx/PVK/Pero/TPBi/LiF/Al490/281.524802.85Ref.91
      2018Quasi-2DITO/PEDOT:PSS/PVK/Pero/TPBi/LiF/Al465/23, 487/222.4,6.2962, 334015, 4.5Ref.85
      2018Quasi-2DITO/NiOx/LiF/Pero/TPBi/LiF/Al473/24, 481/24,490/240.16, 0.25, 0.52217, 509, 1446-3.5Ref.86
      2019Quasi-2DITO/PEDOT:PSS/Pero/TPBi/LiF/Al480/215.737806.23.2Ref.87
      2020Quasi-2DITO/PVK:F4-TCNQ/Pero/TPPO/TPBi/LiF/Al492/188.2168713.1~3.8Ref.88
      2019Quasi-2DITO/PEDOT:PSS/Pero/Tmpypb/LiF/Al475/251.35100.6~1~3Ref.89
      2019Quasi-2DITO/PVK/Pero/TPBi/LiF/Al474/34,484/340.002, 0.134,450.002, 0.14~3Ref.102
      2019Quasi-2DITO/PEDOT/PVK:10%TAPC/Pero/TPBi/Ca/Ag410/11.60.31147.60.194.2Ref.95
      2019Quasi-2DITO/NiOx/PSSNa/Pero/TPBi/LiF/Al493/251.4557372.253.3Ref.108
      2019Quasi-2DITO/NiOx/TFB/PVK/Pero/TPBi/LiF/Al483/269.5700-3.3Ref.90
      2019Quasi-2DITO/PVK/PFI/Pero/3TPYMB/Liq/Al465/212.6211~1.33Ref.92
      2019Quasi-2DITO/PEDOT:PSS/Pero/TPBi/LiF/Al468/250.711220.784.5Ref.97
      2019Quasi-2DITO/PEDOT:PSS or NiOx/Pero/TPBi/LiF/Al480/-, 490/-, 499/-1.43,2.4,1.58919,2825,77591.53, 3.673.5,3.3, 4.4 Ref.102
      2019Quasi-2DITO/PVK/Pero/PO-T2T/Liq/Al485/232.621200-2.6Ref.103
      2019Quasi-2DITO/PEDOT:PSS/Pero/TPBi/LiF/Al487/-119048-~3Ref.98
      2019Quasi-2DITO/NiOx:F6TCNNQ/PVK/Pero/TPBi/Cs2CO3/Al456/-, 468/-0.0150.026---Ref.101
      2020Quasi-2DITO/PEDOT:PSS/Pero/TPBi/LiF/Al450/-, 482/-0.7, 1.1---Ref.96
      2020Quasi-2DITO/PEDOT:PSS/Pero/TyPmPB/LiF/Al494/-2.74654.33Ref.93
      2020Quasi-2DITO/PEDOT:PSS:PFI or POLY-TPD/Pero/TPBi/LiF/Al489/18,479/181.3,5.25184, 412-~4Ref.99
      2020Quasi-2DITO/PEDOT: PSS/Pero/TPBi/Ca/Al485/-7.841130-4.3Ref.100
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    Zongtao Li, Kai Cao, Jiasheng Li, Yong Tang, Xinrui Ding, Binhai Yu. Review of blue perovskite light emitting diodes with optimization strategies for perovskite film and device structure[J]. Opto-Electronic Advances, 2021, 4(2): 200019-1

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    Paper Information

    Category: Review

    Received: Jun. 20, 2020

    Accepted: Aug. 4, 2020

    Published Online: May. 20, 2021

    The Author Email: Li Zongtao (jiasli@foxmail.com)

    DOI:10.29026/oea.2021.200019

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