In situ and General Multidentate Ligand Passivation Achieves Efficient and Ultra-Stable CsPbX 3 Perovskite Quantum Dots for White Light-Emitting Diodes.
Yongfeng LiuXiuwen ShaoZhaoju GaoQingyu XieYupeng YingXiaolin ZhuZhangcheng PanJinpeng YangHao LinXiaosheng TangWeiwei ChenWei PeiYusong TuPublished in: Small (Weinheim an der Bergstrasse, Germany) (2023)
Inorganic CsPbX 3 perovskite quantum dots (PeQDs) show great potential in white light-emitting diodes (WLEDs) due to excellent optoelectronic properties, but their practical application is hampered by low photoluminescence quantum yield (PLQY) and especially poor stability. Herein, we developed an in-situ and general multidentate ligand passivation strategy that allows for CsPbX 3 PeQDs not only near-unit PLQY, but significantly improved stability against storage, heat, and polar solvent. The enhanced optical property arises from high effectiveness of the multidentate ligand, diethylenetriaminepentaacetic acid (DTPA) with five carboxyl groups, in passivating uncoordinated Pb 2+ defects and suppressing nonradiative recombination. First-principles calculations reveal that the excellent stability is attributed to tridentate binding mode of DTPA that remarkably boosts the adsorption capacity to PeQD core. Finally, combining the green and red PeQDs with blue chip, we demonstrated highly luminous WLEDs with distinctly enhanced operation stability, a wide color gamut of 121.3% of national television system committee, standard white light of (0.33,0.33) in CIE 1931, and tunable color temperatures from warm to cold white light readily by emitters' ratio. This study provides an operando yet general approach to achieve efficient and stable PeQDs for WLEDs and accelerates their progress to commercialization.
Keyphrases
- quantum dots
- solar cells
- energy transfer
- sensitive detection
- high resolution
- randomized controlled trial
- molecular dynamics
- light emitting
- systematic review
- room temperature
- dna damage
- signaling pathway
- quality improvement
- dna repair
- perovskite solar cells
- molecular dynamics simulations
- ionic liquid
- genome wide
- high efficiency
- heavy metals
- gene expression
- oxidative stress
- mass spectrometry
- dna methylation
- monte carlo
- high speed