Show/Hide Menu
Hide/Show Apps
Logout
Türkçe
Türkçe
Search
Search
Login
Login
OpenMETU
OpenMETU
About
About
Open Science Policy
Open Science Policy
Open Access Guideline
Open Access Guideline
Postgraduate Thesis Guideline
Postgraduate Thesis Guideline
Communities & Collections
Communities & Collections
Help
Help
Frequently Asked Questions
Frequently Asked Questions
Guides
Guides
Thesis submission
Thesis submission
MS without thesis term project submission
MS without thesis term project submission
Publication submission with DOI
Publication submission with DOI
Publication submission
Publication submission
Supporting Information
Supporting Information
General Information
General Information
Copyright, Embargo and License
Copyright, Embargo and License
Contact us
Contact us
Zinc Chalcogenide Based Shell Layers for Colloidal Quantum Wells
Download
Adv Materials Inter - 2025 - Aldemir - Zinc Chalcogenide Based Shell Layers for Colloidal Quantum Wells.pdf
Date
2025-01-01
Author
Aldemir, Cagatay Han
Yazici, Ahmet Faruk
Ergezer, Nehir
Korkmaz, Taha Can
Mutlugun, Evren
Keleştemur, Yusuf
Metadata
Show full item record
This work is licensed under a
Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License
.
Item Usage Stats
81
views
15
downloads
Cite This
Colloidal quantum wells, also known as colloidal nanoplatelets (NPLs), have emerged as a promising class of materials for light-emitting devices (LEDs). However, the most widely studied core/shell NPLs, which rely on cadmium-based shell layers, face challenges due to toxicity concerns and improper charge confinement. To address these limitations, a new synthetic approach is presented that enables the controlled growth of zinc chalcogenide-based shell layers on NPLs. The synthesized CdSe/ZnSe core/shell NPLs exhibit emission between 615 and 630 nm, with a moderate photoluminescence quantum yield (PL-QY) of 40–50%. It is also demonstrated that the lateral dimensions of the CdSe core NPLs significantly affect the optical properties of the core/shell heterostructures, with smaller lateral dimensions resulting in narrower emission linewidths as low as 20 nm. Further passivation of these core/shell NPLs with an additional ZnS shell layer significantly increases the PL-QY up to 80–90%. Finally, the device performance of these two core/shell NPLs is investigated by fabricating solution-processed LEDs. With LEDs incorporating CdSe/ZnSe/ZnS core/multi-shell NPLs as the active light-emitting layer, an external quantum efficiency (EQE) of 3.82% and a maximum brightness of 6477 cd m−2 is obtained. These findings underscore the significant potential of zinc chalcogenide-based shell layers in advancing colloidal NPLs toward high-performance light-emitting devices.
Subject Keywords
colloidal nanoplatelets
,
colloidal quantum wells
,
colloidal semiconductor nanocrystals
,
core shell heterostructures
,
light-emitting devices
URI
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=105003802255&origin=inward
https://hdl.handle.net/11511/114852
Journal
Advanced Materials Interfaces
DOI
https://doi.org/10.1002/admi.202500120
Collections
Department of Metallurgical and Materials Engineering, Article
Citation Formats
IEEE
ACM
APA
CHICAGO
MLA
BibTeX
C. H. Aldemir, A. F. Yazici, N. Ergezer, T. C. Korkmaz, E. Mutlugun, and Y. Keleştemur, “Zinc Chalcogenide Based Shell Layers for Colloidal Quantum Wells,”
Advanced Materials Interfaces
, pp. 0–0, 2025, Accessed: 00, 2025. [Online]. Available: https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=105003802255&origin=inward.