Morphological and chemical changes in Cd-free colloidal QD-LEDs during operation

Морфологические и химические изменения в бескадмиевых коллоидных QD-LED во время работы
Ruiqi Zhang, Moungi G. Bawendi, Vladimir Bulović, Yongli Lu, Jamie Geng, Shaun Tan, Shreyas Srinivasan, Taehyung Kim, Mayuran Saravanapavanantham, Kwang‐Hee Lim, Mike Dillender, Heejae Chung, Thienan Nguyen, Thienan Nguyen, Tae‐Gon Kim
2026-07-10

Cd-free QD-LEDsInP/ZnSe/ZnSZnTeSe/ZnSe/ZnSacrylate encapsulationinterparticle coarsening
Heavy-metal-free quantum-dot light-emitting devices (QD-LEDs) demonstrate high brightness, saturated color, and high efficiency, yet their operational lifetimes remain limited, with the underlying degradation mechanisms not fully understood. Here, we show that InP/ZnSe/ZnS (red-emitting) and ZnTeSe/ZnSe/ZnS (blue-emitting) colloidal QD-LEDs undergo nanoscale morphological changes during operation. Interparticle coarsening and layer thinning are observed in the core functional layers, accompanied by the generation and diffusion of compositional-oxygen and hydrogen across the device, with oxygen accumulating at the Al electrode/ZnMgO electron-transport layer (ETL) interface. In situ transmission electron microscopy reveals that electron beam exposure, in presence of atomic hydrogen species, accelerates ZnMgO nanoparticles coarsening. To mitigate these degradation pathways, we show that acrylate-based resin encapsulation can stabilize the ETL, HTL, and QD layers by suppressing atomic species formation and halting morphology changes. This approach achieves over 50-fold and 5000-fold lifetime improvement in InP/ZnSe/ZnS and ZnTeSe/ZnSe/ZnS QD-LEDs, respectively. Our findings establish the causal relationships between morphological degradation, interlayer dynamics, and QD-LED instability, providing insight into the acrylate encapsulation treatment that enables efficient and long-lived QD-LEDs.
1
Acrylate encapsulation yields over 50-fold lifetime improvement for InP/ZnSe/ZnS QD-LEDs and over 5000-fold improvement for ZnTeSe/ZnSe/ZnS QD-LEDs.
2
Acrylate-based resin encapsulation suppresses formation of atomic species, halts morphological changes, and stabilizes ETL, HTL, and QD layers.
3
In situ transmission electron microscopy shows that electron beam exposure in the presence of atomic hydrogen species accelerates coarsening of ZnMgO nanoparticles.
4
InP/ZnSe/ZnS (red) and ZnTeSe/ZnSe/ZnS (blue) Cd-free colloidal QD-LEDs undergo nanoscale morphological changes during operation, including interparticle coarsening and layer thinning in core functional layers.
5
Operation generates and drives diffusion of compositional oxygen and hydrogen across the device, with oxygen accumulating at the Al electrode/ZnMgO electron-transport layer (ETL) interface.

Cd-free colloidal quantum-dot light-emitting devices (InP/ZnSe/ZnS and ZnTeSe/ZnSe/ZnS QD-LEDs)

Nanoscale morphological and chemical degradation processes during operation—including interparticle coarsening, layer thinning, generation and diffusion of oxygen and hydrogen, oxygen accumulation at the Al/ZnMgO interface, and mitigation via acrylate-based resin encapsulation to improve device lifetime

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2026-07-10
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Ruiqi Zhang
Moungi G. Bawendi
Vladimir Bulović
Yongli Lu
Jamie Geng
Shaun Tan
Shreyas Srinivasan
Taehyung Kim
Mayuran Saravanapavanantham
Kwang‐Hee Lim
Mike Dillender
Heejae Chung
Thienan Nguyen
Thienan Nguyen
Tae‐Gon Kim
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