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HERO ID
7219280
Reference Type
Journal Article
Title
Stable PbS quantum dot ink for efficient solar cells by solution-phase ligand engineering
Author(s)
Gu, M; Ling, X; Xu, Y; Li, F; Yuan, J; Loi, MA; Liu, Z; Ma, W; Wang, Y; Yang, Fan; Lu, K; Xue, Ye; Wu, T; Fang, H; Zhou, S; Zhang, Y; ,
Year
2019
Is Peer Reviewed?
1
Journal
Journal of Materials Chemistry A
ISSN:
2050-7488
EISSN:
2050-7496
Publisher
ROYAL SOC CHEMISTRY
Location
CAMBRIDGE
Page Numbers
15951-15959
DOI
10.1039/c9ta02393c
Web of Science Id
WOS:000474271200046
Abstract
Surface passivation is essential to realize high photovoltaic performance for solar cells based on PbS quantum dots (QDs). The recently developed solution-phase ligand-exchange strategy can greatly simplify the device fabrication process compared with the traditional layer by layer method. However, the surface hydroxyl ligand (OH) on the PbS QD surface, a main source of trap states, cannot be avoided in the solution-phase ligand-exchange process and has not been paid attention yet. Meanwhile, the unsatisfactory colloidal stability of current PbS QD ink is also a barrier for its industrial application and waiting for solutions. Here, we demonstrate a multiple-passivation strategy by solution-phase ligand engineering in lead halide exchanged QD ink. It was found that our facile approach can efficiently reduce the trap states of PbS QD ink by suppressing the amount of surface hydroxyl groups. Moreover, ligand engineering can also increase the interaction between QDs and solvent, which endows the QD ink with remarkably improved colloidal stability. As a result, a significant improvement of PCE from 9.99% to 11.18% and device stability were realized. Our results present a new passivation method for solution-phase ligand exchanged QD ink and the improved colloidal stability may help to boost the industrial application of PbS QD based solar cells.
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