4.8 Article

Deep-Red-Emitting Colloidal Quantum Well Light-Emitting Diodes Enabled through a Complex Design of Core/Crown/Double Shell Heterostructure

期刊

SMALL
卷 18, 期 8, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202106115

关键词

colloidal quantum wells; deep-red; hot injection; light-emitting diodes; semiconductor nanoplatelets

资金

  1. Singapore National Research Foundation [NRFNRFI2016-08, NRF-CRP14-2014-03]
  2. Science and Engineering Research Council, Agency for Science, Technology and Research (A*STAR) of Singapore
  3. TUBITAK [115F297, 117E713, 119N343]
  4. TUBA

向作者/读者索取更多资源

A new synthetic pathway is proposed for extending the emission wavelength of quasi-2D colloidal quantum wells into the deep-red region using multiple techniques. By developing a new method to obtain thick and passivated NPLs as seeds, and applying a final hot injection shell coating, thick NPLs with superior optical properties including high photoluminescence quantum yield of 88% are achieved. The deep-red LED device fabricated with these NPLs exhibits a high external quantum efficiency of 6.8% at 701 nm.
Extending the emission peak wavelength of quasi-2D colloidal quantum wells has been an important quest to fully exploit the potential of these materials, which has not been possible due to the complications arising from the partial dissolution and recrystallization during growth to date. Here, the synthetic pathway of (CdSe/CdS)@(1-4 CdS/CdZnS) (core/crown)@(colloidal atomic layer deposition shell/hot injection shell) hetero-nanoplatelets (NPLs) using multiple techniques, which together enable highly efficient emission beyond 700 nm in the deep-red region, is proposed and demonstrated. Given the challenges of using conventional hot injection procedure, a method that allows to obtain sufficiently thick and passivated NPLs as the seeds is developed. Consequently, through the final hot injection shell coating, thick NPLs with superior optical properties including a high photoluminescence quantum yield of 88% are achieved. These NPLs emitting at 701 nm exhibit a full-width-at-half-maximum of 26 nm, enabled by the successfully maintained quasi-2D shape and minimum defects of the resulting heterostructure. The deep-red light-emitting diode (LED) device fabricated with these NPLs has shown to yield a high external quantum efficiency of 6.8% at 701 nm, which is on par with other types of LEDs in this spectral range.

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