Journal of Inorganic Materials ›› 2019, Vol. 34 ›› Issue (1): 37-48.DOI: 10.15541/jim20180176
Special Issue: MAX相和MXene材料; 钙钛矿材料; 光伏材料; 2019~2020年度优秀作者作品欣赏:功能材料
• REVIEW • Previous Articles Next Articles
ZHANG Lou-Wen1, SHEN Shao-Li2, LI Lu-Ying2, ZHANG Zhi1, LIU Ni-Shuang1, GAO Yi-Hua1,2
Received:
2018-04-24
Revised:
2018-07-13
Published:
2019-01-21
Online:
2018-12-17
About author:
ZHANG Lou-Wen. E-mail: louwen_zhang@qq.com
CLC Number:
ZHANG Lou-Wen, SHEN Shao-Li, LI Lu-Ying, ZHANG Zhi, LIU Ni-Shuang, GAO Yi-Hua. Application and Development of Cesium Lead Halide Perovskite Based Planar Heterojunction LEDs[J]. Journal of Inorganic Materials, 2019, 34(1): 37-48.
Fig. 3 (a) Schematic diagram of device structure; (b) Cross-sectional TEM image. Scale bar, 50 nm; (c) Flat-band energy level diagram; (d) The EL spectra (straight line) of devices for CsPb(Cl/Br)3, CsPbBr3 and CsPb(Br/I)3 under applied voltage of 5.5 V, and the photoluminescence (PL) spectra (dashed line) of QDs dispersed in hexane[58]
Fig. 4 (a) Schematic illustration of device structure and a cross-sectional TEM image (scale bar: 50 nm); (b) Normalized EL spectra (solid lines) and PL spectra (dashed lines) of CsPbBr3 QLEDs with two purifying cycles. Inset in (b): The photograph of a working device at an applied voltage of 5 V; (c) EQE of these devices for QDs with different purifying cycles as a function of luminance[59]
Fig. 5 (a) Structural representation of CsPbBr3 based LEDs; (b) Current efficiency-voltage (CE-V), and EQE-voltage (EQE-V) characteristic curves[68]; The surface morphology of CsPbBr3 film and surface luminous photo of LED (c) without treatment and (d) with chlorobenzene treatment[69]
Fig. 6 (a) EQE and CE as a function of voltage among devices fabricated with different ETL and HTL materials[77]; (b) EQE-V curves for the LEDs with different PEG:CsPbBr3 (CsBr:PbBr2 molar ratio of 1.4:1) weight ratios[78]; (c) TEM image of cross section of device and corresponding schematic diagram of device structure; (d) EQE for the devices with and without Ag rod[79]
Fig. 7 (a) Overall energy band diagram of the LED structure; (b) EQE and CE vs current density of devices with or without PFI interface modifier[85]; (c) Schematic diagram of device structure; (d) CE and EQE of devices with and without PVP buffer layer, with and without CH3NH3Br (MABr) additive[51]
Fig. 8 (a) Schematic illustration of device structure; (b) EQE of the devices as a function of luminance[90]; (c) Band alignment of each functional layer; (d) EQE of the devices as a function of driving voltage[91]
Fig. 9 (a) Simplified energy band alignment of the LED; (b) Luminous efficiency and EQE versus voltage of the LED[99]; (c) Schematic illustration of solution-processed perovskite LED; (d) EQE, CE, and power efficiency versus voltage of the LED[102]
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