Orthogonal colloidal quantum dot inks enable efficient multilayer optoelectronic devices

Surface ligands enable control over the dispersibility of colloidal quantum dots (CQDs) via steric and electrostatic stabilization. Today’s device-grade CQD inks have consistently relied on highly polar solvents: this enables facile single-step deposition of multi-hundred-nanometer-thick CQD films;...

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Veröffentlicht in:Nature communications 2020-09, Vol.11 (1), p.4814-4814, Article 4814
Hauptverfasser: Lee, Seungjin, Choi, Min-Jae, Sharma, Geetu, Biondi, Margherita, Chen, Bin, Baek, Se-Woong, Najarian, Amin Morteza, Vafaie, Maral, Wicks, Joshua, Sagar, Laxmi Kishore, Hoogland, Sjoerd, de Arquer, F. Pelayo García, Voznyy, Oleksandr, Sargent, Edward H.
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Sprache:eng
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Zusammenfassung:Surface ligands enable control over the dispersibility of colloidal quantum dots (CQDs) via steric and electrostatic stabilization. Today’s device-grade CQD inks have consistently relied on highly polar solvents: this enables facile single-step deposition of multi-hundred-nanometer-thick CQD films; but it prevents the realization of CQD film stacks made up of CQDs having different compositions, since polar solvents redisperse underlying films. Here we introduce aromatic ligands to achieve process-orthogonal CQD inks, and enable thereby multifunctional multilayer CQD solids. We explore the effect of the anchoring group of the aromatic ligand on the solubility of CQD inks in weakly-polar solvents, and find that a judicious selection of the anchoring group induces a dipole that provides additional CQD-solvent interactions. This enables colloidal stability without relying on bulky insulating ligands. We showcase the benefit of this ink as the hole transport layer in CQD optoelectronics, achieving an external quantum efficiency of 84% at 1210 nm. The realisation of film made up of different compositions using colloidal QD inks remains a challenge because of redispersing of underlying films by polar solvents. Here, the authors introduce aromatic ligands to achieve QD inks in weakly-polar solvents that enable fabrication of multi-compositional films.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-020-18655-7