首页|期刊导航|Industrial Chemistry & Materials|In situ molecular passivation for improved performance and spectral stability in thermally evaporated pure blue perovskite light-emitting diodes

In situ molecular passivation for improved performance and spectral stability in thermally evaporated pure blue perovskite light-emitting diodesOA

中文摘要

Pure blue perovskite light-emitting diodes(PeLEDs)produced via vacuum deposition have limited efficiency and spectral stability due to defect-induced non-radiative recombination and halide migration.In this study,we report a pure blue PeLED with improved performance,featuring a thermally evaporated perovskite layer passivated in situ using 4,7-di(9H-carbazol-9-yl)-1,10-phenanthroline(BUPH1),a newly introduced phenanthroline-based small molecule designed to coordinate under-coordinated Pb^(2+)ions.The bidentate coordination of BUPH1 effectively passivates halide vacancies and suppresses ion migration,resulting in improved film morphology,enhanced photoluminescence quantum yield,reduced trap density,and increased exciton binding energy.The optimized perovskite film emits at 472 nm with a narrow full width at half maximum of 19 nm,exhibiting pure blue emission suitable for Recommendation ITU-R BT.2020,an industrial standard for color gamut.The corresponding Pe LED achieves an external quantum efficiency of 3.10%,the highest value reported for thermally evaporated pure blue PeLEDs.In addition,the device maintains excellent spectral and color stability under electrical bias,with no noticeable peak shift or change in chromaticity coordinates across varying voltages.This work demonstrates that in situ molecular passivation is an effective strategy to overcome key limitations of thermally evaporated perovskite emitters and supports their potential for next-generation high-resolution display technologies.

Jiyoung Kwon;Yunna Kim;Nakyung Kim;Jinu Park;Sukki Lee;Seoyeon Park;Sunwoo Kang;Byungha Shin

Department of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of Korea Samsung Display Co.,Yongin-si,Gyeonggi-do 17113,Republic of KoreaDepartment of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of KoreaDepartment of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of KoreaDepartment of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of KoreaDepartment of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of KoreaDepartment of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of KoreaDepartment of Chemistry,Dankook University,Cheonan 31116,Republic of KoreaDepartment of Materials Science and Engineering,Korea Advanced Institute of Science and Technology(KAIST),Daejeon 34141,Republic of Korea

信息技术与安全科学

small moleculevacuum depositionsitu molecular passivationthermally evaporated perovskite light emitting diodeshalide migrationspectral stabilitypure blue emissionexternal quantum efficiency

《Industrial Chemistry & Materials》 2026 (3)

P.355-365,11

supported by the National Research Foundation of Korea(NRF)grant funded by the Korea government(MSIT)(RS-2022-NR068162,RS-2023-00208832)。

10.1039/d5im00134j

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