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Enabling Tailorable Optical Properties and Markedly Enhanced Stability of Perovskite Quantum Dots by Permanently Ligating with Polymer Hairs.

Young Jun YoonYajing ChangShuguang ZhangMeng ZhangShuang PanYanjie HeChun Hao LinShengtao YuYihuang ChenZewei WangYong DingJaehan JungNaresh ThadhaniVladimir V TsukrukZhitao KangZhiqun Lin
Published in: Advanced materials (Deerfield Beach, Fla.) (2019)
Instability of perovskite quantum dots (QDs) toward humidity remains one of the major obstacles for their long-term use in optoelectronic devices. Herein, a general amphiphilic star-like block copolymer nanoreactor strategy for in situ crafting a set of hairy perovskite QDs with precisely tunable size and exceptionally high water and colloidal stabilities is presented. The selective partition of precursors within the compartment occupied by inner hydrophilic blocks of star-like diblock copolymers imparts in situ formation of robust hairy perovskite QDs permanently ligated by outer hydrophobic blocks via coprecipitation in nonpolar solvent. These size- and composition-tunable perovskite QDs reveal impressive water and colloidal stabilities as the surface of QDs is intimately and permanently ligated by a layer of outer hydrophobic polymer hairs. More intriguingly, the readily alterable length of outer hydrophobic polymers renders the remarkable control over the stability enhancement of hairy perovskite QDs.
Keyphrases
  • room temperature
  • solar cells
  • high efficiency
  • quantum dots
  • ionic liquid
  • energy transfer
  • sensitive detection
  • single cell
  • genome wide
  • gene expression
  • high resolution