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◆ Nature nanotechnology2026-09-14

High-resolution intrinsically stretchable quantum-dot displays through thermally assisted intaglio transfer printing.

Jisu Yoo, Kyunghoon Lee, Ji Su Kim, Yunho Kim, Chansul Park, Jinhee Lee, Jiwon Kim, Sun-Woo Lee, Eonhyoung Ahn, Sonwoo Jung, Jung Duk Seo, Soyeon Lee, Yaewon Kim, Gwang Heon Lee, Kiwook Kim, Soo Ik Park, Daewon Yoon, Jongseok Bae, Changsoon Choi, Hyungju Ahn, Taek-Soo Kim, Dong Chan Kim, Dae-Hyeong Kim, Jiwoong Yang, Moon Kee Choi

原始摘要(英文原文)· Original abstract
Intrinsically stretchable light-emitting devices are promising for wearable displays, soft robotics and skin-mounted optoelectronics but are limited by the trade-off between mechanical softness, charge injection and pixel definition. Stretchable quantum-dot emissive layers offer narrow, colour-tunable emission from quantum-confined nanocrystals, yet elastomeric matrices introduce insulating barriers and viscoelastic deformation that compromise efficiency and high-resolution patterning. Here we report ligand engineering at the interface and thermally assisted intaglio film transfer printing (LIFT), a strategy for high-definition intrinsically stretchable quantum-dot light-emitting diodes. Selective replacement of the polymer-rich surface of quantum-dot nanocomposites with polar short-chain ligands forms a nanoscale interfacial region that lowers the hole-injection barrier while preserving bulk mechanical compliance. Thermal assistance concentrates strain at pattern boundaries, allowing clean cleavage of soft emissive films into high-fidelity pixel arrays. The devices achieve external quantum efficiencies of up to 23.9% in conventional architectures and fully stretchable QLEDs with a luminance of 53,300 cd m⁻2, an external quantum efficiency of 8.0% and stretchability beyond 65%. The method further produces arrays up to 16,000 pixels per inch and stretchable 12 × 12 multicolour passive-matrix displays.
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High-resolution intrinsically stretchable quantum-dot displays through thermally assisted intaglio transfer printing. — 科研速览 Science Skim